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    AI Data Sovereignty Governance Framework

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    Sold by: Versent 
    The AI Data Sovereignty Governance Framework ensures that organisations can leverage AI and machine learning on AWS while fully complying with Australian data sovereignty regulations. This offering focuses on controlling and securing the lifecycle of data used in AI/ML models, ensuring it remains within Australian borders and adheres to privacy standards. Versent provides tools for data residency enforcement, secure AI/ML pipelines, ethical AI usage, and continuous compliance monitoring. Key deliverables include data governance policies, AWS SageMaker integration, data masking, and audit reports, helping organisations adopt AI while safeguarding data privacy and regulatory compliance.
    Listing Thumbnail

    AI Data Sovereignty Governance Framework

     Info
    Sold by: Versent 

    Overview

    The AI Data Sovereignty Governance Framework is designed to help organisations leverage artificial intelligence (AI) and machine learning (ML) on AWS while ensuring full compliance with Australian data sovereignty regulations. As AI-driven decision-making becomes more integral to business operations, it’s crucial to ensure that data used for training, inference, and storage adheres to local laws governing data residency, access, and privacy. This offering provides organizations with the tools, policies, and frameworks necessary to manage and control the lifecycle of data in AI models, ensuring data remains within Australian borders and is used ethically and securely. This solution helps mitigate risks associated with cross-border data transfers, unauthorised access, and non-compliance with evolving AI regulations.

    Through a combination of AWS services and custom governance solutions, Versent will create a tailored framework that integrates AI/ML workflows with data sovereignty controls. The service also ensures that AI models are trained on data that meets strict compliance standards, preventing potential legal and operational risks arising from improper data usage.

    Highlights:

    • Data Residency Enforcement: Ensure all data used in AI model training, storage, and inference remains within Australian borders.

    • Secure AI/ML Pipelines: Implement secure, compliant AI/ML pipelines using AWS AI/ML services, ensuring sovereignty over the data lifecycle.

    • Ethical AI Usage: Develop AI governance policies that ensure data privacy, bias mitigation, and transparency in AI-driven decisions.

    • Compliance Monitoring: Ongoing monitoring and reporting tools to ensure continuous adherence to Australian data sovereignty laws and AI ethics standards.

    • Data Masking & Anonymisation: Ensure sensitive data used in AI models is anonymised or masked to meet privacy regulations.

    Deliverables:

    • Data Sovereignty Policy for AI: A comprehensive set of policies that define how data can be collected, processed, stored, and used for AI/ML purposes, ensuring full compliance with Australian sovereignty regulations.

    • AI/ML Data Lifecycle Management: Implementation of tools and procedures for managing the full lifecycle of AI data, from collection to inference, ensuring data remains secure and sovereign throughout.

    • AWS SageMaker Integration: Configure AWS SageMaker and other AI/ML services to enforce data residency and access policies during model training and deployment.

    • Data Masking & Encryption: Integration of data masking, encryption, and anonymization tools to safeguard sensitive data during AI processes.

    • Audit & Compliance Reports: Regular reports on data usage, access, and compliance, including insights into AI-driven decisions to ensure transparency and accountability.

    • AI Model Governance Framework: Guidelines and tools for auditing AI model outcomes to ensure fairness, transparency, and ethical decision-making.

    • Ongoing Monitoring & Automation: Automated tools for monitoring data movement, storage, and compliance, ensuring continuous adherence to sovereignty and privacy standards.

    Highlights

    • Data Residency Enforcement: Ensure all data used in AI model training, storage, and inference remains within Australian borders.
    • Secure AI/ML Pipelines: Implement secure, compliant AI/ML pipelines using AWS AI/ML services, ensuring sovereignty over the data lifecycle.
    • Ethical AI Usage: Develop AI governance policies that ensure data privacy, bias mitigation, and transparency in AI-driven decisions.

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