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    Palantir Platform

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    Deployed on AWS
    Palantir Platform empowers organizations to effectively integrate their data, decisions, and operations.
    4.1

    Overview

    Palantir Platform is accessible via private pricing only. The public price for Palantir Platform is a placeholder and actual payment may be different than the listed amount, depending on many factors. If you are interested in purchasing Palantir Platform and not already in contact with a sales representative, please get in touch with us at https://www.palantir.com/contact/get-started/ 

    Palantir Platform empowers organizations to effectively integrate their data, decisions, and operations. This technology, forged through years of direct experience with complex institutional data challenges, re-unifies companies around their central mission. It enables them to become fully digital connected companies.

    Highlights

    • Data Operationalization
    • Multi-System Connectivity

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    Deployed on AWS
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    Pricing

    Palantir Platform

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    Pricing is based on the duration and terms of your contract with the vendor, and additional usage. You pay upfront or in installments according to your contract terms with the vendor. This entitles you to a specified quantity of use for the contract duration. Usage-based pricing is in effect for overages or additional usage not covered in the contract. These charges are applied on top of the contract price. If you choose not to renew or replace your contract before the contract end date, access to your entitlements will expire.
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    1-month contract (1)

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    Dimension
    Description
    Cost/month
    Overage cost
    Foundry Unit
    Foundry Subscription Unit
    $100,000.00

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    Refund Policies are subject to direct agreements between the customer and Palantir

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    Delivery details

    Software as a Service (SaaS)

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    Product comparison

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    Updated weekly
    By Palantir Technologies
    By Cloudera

    Accolades

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    Top
    10
    In Data Analysis
    Top
    10
    In Data Catalogs, Data Governance

    Customer reviews

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    Sentiment is AI generated from actual customer reviews on AWS and G2
    Reviews
    Functionality
    Ease of use
    Customer service
    Cost effectiveness
    Positive reviews
    Mixed reviews
    Negative reviews

    Overview

     Info
    AI generated from product descriptions
    Data Integration and Operationalization
    Enables integration of organizational data across multiple systems and operationalizes data for decision-making and operational processes
    Multi-System Connectivity
    Provides connectivity across multiple disparate systems to create unified data access and operations
    Enterprise Data Unification
    Re-unifies organizational data and operations around central mission objectives through integrated platform architecture
    Digital Transformation Enablement
    Supports transformation of organizations into fully digital connected entities through integrated data, decisions, and operations
    Complex Institutional Data Management
    Handles complex institutional data challenges through purpose-built technology designed for enterprise-scale data environments
    Workload Auto-scaling
    Intelligently autoscales workloads up and down across hybrid and public cloud environments for optimized cloud infrastructure utilization.
    Multi-function Analytics Platform
    Provides integrated data warehouse, machine learning, and custom analytics capabilities with unified analytic functions to eliminate data silos.
    Shared Data Experience (SDX)
    Implements security and governance policies that are set once and applied consistently across all data and workloads, with portability across supported infrastructures.
    Data Lifecycle Management
    Manages complete data lifecycle functions including ingestion, transformation, querying, optimization, and predictive analytics across multiple cloud environments.
    Unified Security and Governance
    Ensures all workloads share common security, governance, and metadata with capabilities for data discovery, curation, and self-service access controls.
    AI Governance Framework
    Active metadata-based governance with rules, processes and responsibilities to ensure ethical AI practices, mitigate risk, adhere to legal requirements, and protect privacy
    Automated Data Lineage
    End-to-end lineage tracking providing transparency into data transformation and flow across systems, including both summary-level business lineage and detailed technical lineage
    Unified Data Catalog
    Multi-cloud and hybrid environment data discovery with business context including data origin, ownership, usage patterns, and access to reports, AI models and data products
    Data Quality Automation
    Automated monitoring and rule management system for enterprise-wide data quality management replacing manual processes
    Privacy and Compliance Workflow
    Centralized automation of privacy workflows to operationalize privacy requirements and address global regulatory compliance

    Contract

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    Standard contract
    No
    No
    No

    Customer reviews

    Ratings and reviews

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    4.1
    62 ratings
    5 star
    4 star
    3 star
    2 star
    1 star
    40%
    47%
    11%
    0%
    2%
    23 AWS reviews
    |
    39 external reviews
    External reviews are from G2  and PeerSpot .
    Jon H.

    Data workflows have become seamless and now support rich multi-language analytics for decisions

    Reviewed on Jun 16, 2026
    Review provided by PeerSpot

    What is our primary use case?

    I use Palantir Foundry  to ingest data and create visualizations for decisions.

    What is most valuable?

    My favorite thing about Palantir Foundry  is the ability to utilize multiple different types of coding languages and the current updated documentation and help features that are in there have improved pretty significantly and make it rather friendly for use.

    The scalability of Palantir Foundry is the part that I love the most. That is why I said that is where my primary focus is, trying to get data and then turn it into information and knowledge and understanding, and more importantly, getting decisions out of it. The scalability is phenomenal.

    What needs improvement?

    I think the things that I do not like about Palantir Foundry is not a Palantir issue so much as it is from my company side and what they have commissioned for and have not commissioned for.

    With Palantir Foundry, it is a part of the user tools that they provide. Their AI Assist that they use is something I have found that sometimes I get better results for when I do need help and aid. I get better results going to outsourced AI assistance sites such as Gemini , because it seems like AI Assist, which my understanding is it is supposed to be searching and utilizing the documentation for Palantir Foundry, but sometimes it gets kind of confused in the capabilities and it will tell you, 'Oh, you can use this and do this.' And then when you try it, the system says, 'We do not support this.' Whereas I can go to Gemini  and it will give me a workaround that will actually work.

    For how long have I used the solution?

    I have been using Palantir Foundry for about four years now.

    What do I think about the stability of the solution?

    I find the stability of Palantir Foundry to be extremely stable. I have had only one time period where there was any downtime that I noticed, and it was for a very short period of time. When I say short period of time, I am talking within hours, not days.

    How are customer service and support?

    I have contacted the technical support or customer support of Palantir a couple times.

    Especially for what they are supporting and doing, I find the quality and the speed of the support to be extremely fast. I usually get within a day turnaround and the support staff are extremely knowledgeable and good at what they are doing.

    Which solution did I use previously and why did I switch?

    Prior to using Palantir Foundry, I used various different SAPs and ERPs where I would actually have to export worksheets and then build my own. The closest thing I would be building would be databases that just resided on my computer, and I was not using anything like Palantir Foundry.

    How was the initial setup?

    The initial deployment of Palantir Foundry was super simple.

    It did not take me any time to fully set up Palantir Foundry because it was made available to us and it was basically already set up and rolled out by the time I got permissions to use it. All I had to do is basically create an account. Actually, I did not even do that. Someone else in my organization created the account for me with the initial setup of everything. By the time I logged in and went to use things, most of it was already initialized for me.

    What about the implementation team?

    Palantir Foundry requires no maintenance on my end as it is taken care of by Palantir. The only thing I ever get, and Palantir already does it, is when there are certain upgrades to transformations that I have made, they will put in the upgrades, but it requires me to actually approve them and merge them in. It is minimal work on my part. Usually I can click it and just approve it right away.

    What other advice do I have?

    I would rate this product a 9 out of 10.

    Uttkarsh Shukla

    Centralized customer onboarding data has reduced backlogs and now reveals hidden risk patterns

    Reviewed on Jun 16, 2026
    Review provided by PeerSpot

    What is our primary use case?

    My main use case for Palantir Foundry was with respect to the customer onboarding process, which had been outsourced to multiple teams, and there were multiple data sets that had been outsourced to different teams. Some of the teams were third parties, which were creating a backlog and elongating the process. My job was to streamline all the data into one universe, utilizing Palantir Foundry to centralize the data and information in one place to find insights where we were having backlogs for smooth customer onboarding. My objective was to utilize Palantir Foundry's data centralization capabilities to identify backlogs and situations where we were lacking.

    For example, in this process, data was coming from various teams responsible for different objectives. For onboarding a new customer, there is a process known as KYC, where we need to identify the customer's details, which are usually transferred to third parties, and some in-house KYC teams must review them. Generally, when third-party cases come to the banks, they are unable to find out why a particular customer is not being onboarded. I tried to merge the data into a central place to find out the reasons, such as why the data is not being updated from third-party sources. The information sometimes lacked advance details from third parties and other sources. Additionally, I was able to map the entities, including cases where customers were not onboarded due to specific reasons related to their past profiles with other banks. These scores were not highlighted by the sales representatives, who were told to meet targets. I was able to track these and identify the pain points of why a customer had not been onboarded or entertained by the banks.

    What is most valuable?

    One of the best features Palantir Foundry offers is the Ontology part. It allows mapping different data from different domains and teams into one place, creating relationships between them. For example, I was handling sales data, but there was also customer profile data, financial profile data, and previous transactions data, which I mapped in one place.

    Palantir Foundry helped by creating a reporting system that was fast. Previously, we waited for at least a week, but now everything was available in one place with all insights.

    Palantir Foundry's governance and security are good, which is a main aspect that people prefer. Providing online data of in-house security to clients would be beneficial amidst increasing cyberattacks. Palantir Foundry's use has been impactful as the company is a vendor for a banking client who utilized it effectively.

    What needs improvement?

    To improve Palantir Foundry, I would recommend integrating AI capabilities. Although AI is currently available, having simple general language query features would be useful for end-users. Palantir Foundry's unique selling point is creating a universe, which should remain, but adding a query option would be beneficial.

    Palantir Foundry's reporting capabilities can also be enhanced to function more in the manner of a BI reporting tool, which would be a valuable addition.

    One downside is the absence of many users familiar with the platform. The cost of using Palantir Foundry is another factor that clients consider, which I accounted for when rating the solution as eight out of ten. Palantir Foundry should address pricing to make it more competitive.

    Training resources for Palantir Foundry should be increased to facilitate product growth and build a community that can expand its use.

    For how long have I used the solution?

    I have used Palantir Foundry  for one and a half years in one of the projects for my banking client, where I worked upon the creation of pipelines in Palantir Foundry , replacing their absolute systems.

    What do I think about the stability of the solution?

    Palantir Foundry's scalability is such that it can handle growing data and user needs easily. The implementation was not very complicated because our in-house domain data was not that large. I did not find any issues with stability.

    What do I think about the scalability of the solution?

    Palantir Foundry's scalability is such that it can handle growing data and user needs easily. The implementation was not very complicated because our in-house domain data was not that large. I did not find any issues with scalability.

    How are customer service and support?

    My experience with customer support for Palantir Foundry is that I have not interacted with them much. I did have a single interaction when I faced an issue with my login credentials. The chat system available was helpful, and the problem was solved efficiently. It was a satisfactory experience.

    Which solution did I use previously and why did I switch?

    Before using Palantir Foundry, we had our in-house centralized reports, but there was no centralized system that connected different domains and data in the manner that Palantir Foundry does. This connectivity is a key benefit that Palantir Foundry brought to us.

    Before choosing Palantir Foundry, we considered Microsoft Fabric  as we were using Power BI. However, I found Palantir Foundry more useful and stable, leading us to choose it over the former.

    What was our ROI?

    Both time and money were saved since a project that would usually take six months was completed in two to three months. This allowed us to allocate time to other projects as well.

    What's my experience with pricing, setup cost, and licensing?

    My experience with pricing, setup cost, and licensing for Palantir Foundry was challenging for us. Getting approval for pricing and setup cost was difficult. We obtained initial phase approval, but later budget requests for other projects were not accepted by the board. Palantir Foundry should reconsider its pricing strategy to become more competitive.

    Which other solutions did I evaluate?

    Before choosing Palantir Foundry, I truly thought of Microsoft Fabric  because we were already using Power BI. In comparison to Palantir Foundry, I found it more useful, and it was stable, so we went with Palantir Foundry.

    What other advice do I have?

    My advice to others looking into using Palantir Foundry is that they need to be clear on what aspect they want to utilize Palantir Foundry for, whether for app development or data connection. Without a clear objective, using Palantir Foundry might not be beneficial. Those with the need to integrate different partners and domains into a common platform will find it valuable.

    Palantir Foundry should provide more training resources for people who are in the market so that the product can grow. Additionally, consideration should be given to building a community to expand Palantir Foundry's use. I rated this solution an eight out of ten.

    Tahir Tahirov

    Data analyst has created custom dashboards and forums and now builds complex apps with full flexibility

    Reviewed on Jun 16, 2026
    Review from a verified AWS customer

    What is our primary use case?

    I am currently a data analyst using Palantir Foundry  as an end-user for developing apps, forums, dashboards, and manipulating the data internally.

    My usual use cases for Palantir Foundry  mostly involve developing specialized apps, particularly in Palantir Slate. I am deeply using Palantir Slate, developing forums, dashboards, and specific applications. I currently have four short videos on my PC showing what I have accomplished in Palantir, although they are blurred due to company policy. On the technical side, I do the coding in JavaScript and develop using HTML and CSS to create my own widgets. Additionally, my first use case for Palantir Foundry was using the Contour app and the report app, and I can share those videos if you write to me on my LinkedIn profile.

    What is most valuable?

    The most valuable features of Palantir Foundry for my use cases are the Slate application and Contour, as the latter allows me to manipulate data ninety-five percent without knowing coding. I can transform data however I want and use the data set along with the pipeline builder to manipulate data flow and updates. My favorite tool remains Slate for developing forums and dashboards exactly how I want them to look.

    I have noticed that Palantir Foundry cuts down the time of usage by automating forms and dashboards. However, a disadvantage is the challenge of connecting data to and from Palantir, which requires coordination with data engineers. It takes time, and a data analyst should not be responsible for connecting data; that is the role of the data engineer. I handle data manipulations myself based on customer requirements, ensuring I know how to aggregate, manipulate, and summarize it.

    What needs improvement?

    While I do not have specific suggestions for improvements or enhancements, after using Slate, I realized it provides the freedom to create websites. However, I found the Object Explorer and related apps limiting, as they confine me within boxes, restricting proper manipulation. If the Object Explorer and its related apps offered the same flexibility as Slate, it would greatly improve the experience. Although one does not need coding knowledge for Object Explorer, an understanding of primary and secondary keys is still required. Those unfamiliar with coding may require specific training for Object Explorer. Slate, by contrast, requires coding knowledge, including JavaScript, HTML, CSS, and how to connect data within and outside of Palantir Foundry. With this knowledge, I gain full flexibility in developing websites and can create my own widgets using CodeSandbox, which works much faster than using the predefined Palantir Slate widgets. For example, Palantir Slate allows about one thousand two hundred widgets, and performance suffers when limits are exceeded. However, by creating an HTML table with multiple widgets in CodeSandbox, performance remains excellent, illustrated by my application with over one thousand five hundred widgets on one page.

    For how long have I used the solution?

    I have been using Palantir Foundry for about seven years.

    What do I think about the stability of the solution?

    The reliability and stability of Palantir Foundry is great; it remains stable as long as I do not accidentally create an infinite loop, which can cause the application to freeze. With a stable internet connection, everything works perfectly.

    What do I think about the scalability of the solution?

    Palantir Foundry has proven to be a great tool in terms of scalability for me, especially compared to Power BI, which felt inadequate. Its scalability depends on the Slate application; essentially, I am only limited by my imagination. I have not explored machine learning features yet, such as three-dimensional visualization in Palantir Foundry, but in two-dimensional space, when developing forms or dashboards, I can copy and paste data from Excel, which then builds visual representations and drawings, demonstrating that the only limit is my creativity.

    How are customer service and support?

    I communicate with the technical support of Palantir Foundry less frequently these days. My last interaction occurred when I created a forum for BP's data request support, where some users did not receive email notifications. I discovered that the issue stemmed from a Microsoft connection limitation affecting users connected to more than one thousand distribution lists. I have advised those affected to reduce their connections to stay below the threshold, which should allow the system to properly update and ensure they receive notifications.

    Regarding the technical support team at Palantir Foundry, I would rate it around seven. It varies depending on the level of support and the responsiveness of the team. Sometimes it may take days to hear back, while other times I receive answers in as little as fifteen to twenty minutes. Developing apps using Slate can be particularly challenging since not many people have experience with it compared to other applications. When I seek help regarding code in Slate, it can take considerable time for the team to find the right answer or documentation, especially since the responses depend on the level of support provided, and specific queries regarding coding usually require reaching out to more experienced developers.

    Which solution did I use previously and why did I switch?

    Before Palantir Foundry, I had some experience with HTML and CSS, as well as Macromedia Flash long ago. However, I mainly used Microsoft Excel, which I enjoyed and used to develop a forum in Excel.

    I decided to stop using Excel and start using Palantir Foundry because my ex-line manager suggested I try using Palantir to manipulate data and create reports. Gradually, with some support and visits from Palantir representatives in Azerbaijan every few months, I learned more about how to use it. I even took a Python course on Coursera from the University of Michigan and completed an eighteen-month data analytics course supported by BP, where I also learned about machine learning that I may use in Palantir Foundry someday.

    How was the initial setup?

    I did not participate in the initial setup of Palantir Foundry or the installation process. I consider myself an experienced user, as colleagues come to me in Azerbaijan for questions about applications. While I can help with applications I have developed, if responsibility falls to someone else, I need to take time to review and consult with my line manager to understand it better.

    Which other solutions did I evaluate?

    Palantir Foundry was suggested to me by my manager, and as I started using it, the adoption increased, with more apps being integrated. I have heard that BP also uses AWS , but it seems somewhat limited. I directly asked if there is anything in AWS  that is similar to the Slate application, and they mentioned there is one, but BP management did not want to pursue it for some reason. I am a developer and coder, so I cannot elaborate on that.

    What other advice do I have?

    I do not know anything about the pricing of Palantir Foundry; it is managed by the company's finance management. I am a user, but after using Palantir Slate, I noticed a large advertisement within the company concerning Power BI, which I strongly dislike. It seems that anything free, such as Power BI, cannot be sufficiently effective. I would rate this review with a rating of nine overall.

    reviewer2846064

    Data platform has unified global operations and has accelerated data‑driven decisions

    Reviewed on Jun 12, 2026
    Review provided by PeerSpot

    What is our primary use case?

    Palantir Foundry  serves as our data platform for the company, which means we have numerous use cases and business cases that cross all the different business groups, subsidiaries of the company, and also different support functions and business functions of the corporate. We have more than 200 use cases in the corporate because Forvia is a very big company. The main use case is to enable the data value and data product for our corporate and for our business.

    The main purpose of the data platform is to have a good return on investment based on IT digital dependencies. From a business point of view, I will give you a good example of purchasing. For the purchasing side, purchasing has two types: direct purchasing and indirect purchasing. Especially for the direct purchasing part, previously, we could not know that all the purchasing data management was quite siloed. With Palantir Foundry , we break the data silo to make all the different data which comes from the purchasing department globally, which have acceleration with the data sourcing assistant and AI sourcing assistant, to help our business accelerate their purchasing business transformation and to achieve excellence in terms of purchasing goods price. This helps us, at the same time, to speed up for the purpose of time saving, and it helps our business to accelerate all the price transformation strategy with our suppliers. That is a good benefit.

    Not only for the purchasing part, it is also for the processing side in the operation and for the industrial operation, because Forvia is a manufacturing company. We have many data use cases in the plant. Globally, we have 500 plants and factories globally, which have many critical operations on the factory plant side. For example, the predictive maintenance with the data coming from the shop floor from the plant side helps us to have a good level of understanding of the different machine statuses of the plant.

    How has it helped my organization?

    This is the data-driven enterprise strategy. Since five years ago, we started our data program and launched the data-driven enterprise. This strategy has changed our HR organization, meaning we need to apply change management to accelerate because we are facing the change of data and AI. With Palantir Foundry, it helps us to accelerate this change management in our corporate, which is quite positive.

    Time saving, budget saving, and cost reduction are benefits we have experienced, along with accelerating decision-making for the target, because Palantir Foundry with the data is quite useful. It helps management make the right decisions in the market, especially in the current situation where all the competition in the automotive market is quite complex. With Palantir Foundry, it helps us have better benefits and better return on investment, and also accelerates the right decision in the market.

    What is most valuable?

    There are three good features which we have applied until today in Palantir Foundry. The first one is, of course, all the data product features from Palantir Foundry, with all the different data pipelines, which helps us to have end-to-end data product experience with Palantir Foundry. The second one, relative to the previous benefits about data product, is that we have a good level of data ontology, which is a data catalog that helps the business people to understand better their data in a functional way. The third part is the AIP usage, because Palantir Foundry has the AIP feature, AI platform feature. With AIP features, we could accelerate our AI transformation and also develop our own AI agent with Palantir Foundry.

    What needs improvement?

    Palantir Foundry needs two points for improvement regarding the data product. First, Palantir Foundry needs to improve their clear resume about their product features roadmap. Second, Palantir Foundry needs to have a closer connection with the enterprise corporate application, which means the business application, because big companies have a very huge ecosystem of business applications. In my personal perspective, I think Palantir Foundry still has some space to improve in integrating with the IT landscape of the corporate.

    I want to say that Palantir Foundry is quite expensive. It is not so easy for budget review and budget transformation of the company, which is quite expensive.

    For how long have I used the solution?

    In terms of my experience with Palantir Foundry, I have been using the Foundry  product from Palantir for more than five years already.

    What do I think about the stability of the solution?

    It is stable.

    What do I think about the scalability of the solution?

    The scalability is good, but we need to pay for the compute and the resource.

    How are customer service and support?

    The customer support is fine. We have the Forward Deployment Engineer, FDE, with us on site, but once again, it is quite expensive for the daily price of the FDE engineer. I think we need to rely on classical support by using a ticketing system of Palantir.

    Which solution did I use previously and why did I switch?

    We previously had Cloudera in the company as the data lake solution.

    How was the initial setup?

    At this stage, it is fine.

    What about the implementation team?

    We don't have a migration plan.

    What was our ROI?

    I cannot give you the details of the money saved because it is quite confidential. What I can tell you is that return on investment is quite good, but Palantir Foundry is quite expensive and it is difficult to have a good budget for Palantir Foundry. That is the reality.

    What's my experience with pricing, setup cost, and licensing?

    At this stage, it is fine.

    Which other solutions did I evaluate?

    At this stage, it is fine.

    What other advice do I have?

    I have two suggestions for other companies looking to use Palantir Foundry. First, you need to understand how Palantir Foundry integrates with your IT system landscape before choosing to use Palantir Foundry. Second, you need to define and design good governance for Palantir Foundry usage for your data platform. I have rated this review with a score of 8.

    SubhanReza

    Unified data workflows have improved end-to-end analytics but the interface has remained monotonous

    Reviewed on Jun 08, 2026
    Review provided by PeerSpot

    What is our primary use case?

    Palantir Foundry  serves as our primary SaaS platform, providing a single platform where we integrate our data, create data connections, retrieve the data, and build transformations on top of that.

    We then create visualizations and reporting by creating Workshop applications or Contour analysis.

    In my recent project, we had all those data and reports in the old on-premises system, QlikView . We migrated all that data along with the workflow and dashboards onto Palantir Foundry .

    We created all those datasets in Code Repository by ingesting raw data and creating data connections from different sources such as SAP sources and other sources. We then consolidated all that data and performed transformation.

    On top of that, we created a workflow using Pipeline Builder, and then we fed that data into the ontologies and created the dashboards in Workshop applications.

    This was the entire end-to-end workflow.

    What is most valuable?

    Palantir Foundry provides a good platform where we can integrate two different data sources and pull all that data together.

    We can find business use cases on top of that by creating applications or dashboards for analysis, supply chain workflow, or any kind of business value we want to find out.

    It's a very good platform where we can do all those things on a single platform.

    Currently, I believe that integrating AI models and an AI agent on top of the ontology is valuable. This is the best thing that Palantir has launched recently.

    What needs improvement?

    The theme is very monotonous and should be improved. Analytics and data engineering platforms such as Databricks  and other tools have a very good UI and theme.

    Palantir Foundry should work on improving this aspect.

    In terms of data integration, we have to create an agent and similar functionality.

    If Palantir were able to add more connectors, it would be really helpful. These are some areas where they can improve.

    For how long have I used the solution?

    I have been using Palantir Foundry for the last three years.

    What do I think about the stability of the solution?

    Palantir Foundry is very stable.

    What do I think about the scalability of the solution?

    We can increase the cluster or the kind of CPU and computation we want.

    For storage, we obviously get a kind of S3  bucket, so this aspect is fine.

    How are customer service and support?

    In my organization, we have a monthly call with Palantir support where we can sometimes find solutions from them.

    For example, they support us on a few new, latest changes made by Palantir or if they are sunsetting any tools.

    Which solution did I use previously and why did I switch?

    Earlier, we had a lot of legacy systems for big data processing. Sometimes we did not find the right skill set to deal with all that infrastructure, and it was taking a lot of time and cost for our organization.

    When we switched to Palantir Foundry, it became a single platform which we could use for our entire analytics and data engineering workflow.

    This was the best thing, where we get all the advantages of other platforms in a single place.

    When we were dealing with Excel-based or Midas systems, there were a lot of challenges.

    Sometimes we were lagging in data correctness or updated data while we had a reporting call or our weekly performance call.

    Sometimes we did not get the updated data, and sometimes we were lacking in terms of correctness.

    After we automated the entire workflow on Palantir Foundry, it ran really well in terms of time and correctness, and also data quality.

    Palantir Foundry has many options, such as data expectancy checks, schedules, time checks, and health checks, which guarantee data correctness and data quality.

    What other advice do I have?

    Transformations were taking so much time to perform and run.

    When we used Spark-based transformation in Code Repository and applied optimization techniques, it helped significantly.

    We reduced the time by fifty percent, and it was a great achievement for us in that project.

    We should definitely check Palantir Foundry out once, as it can be really helpful for the business.

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