
Overview
This solution predicts the Loss due to default of the borrowers who are most likely to default on their Consumer loans in Peer-to-Peer lending. During the training stage, the solution understands the dataset, handles missing data and class imbalance, conducts feature interaction on the training data and selects a subset of best features based on feature importance. It then trains on multiple ML models, identifies the best performing model and tunes it accordingly. This trained model is then selected for prediction on the test data.
Highlights
- This solution takes Peer-to-Peer consumer loan data as input, pre-processes the data, picks out the best features based on feature importance, trains it on several models and gets the best model and predicts the test data, thereby reducing the risk of lending to defaulters and expected loss to the lender.
- The algorithm is specifically trained on loan details pertaining to Peer-to-Peer consumer loans using machine learning.
- Mphasis HyperGraf is an omni-channel customer 360 analytics solution. Need customized Deep Learning/NLP solutions? Get in touch!
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Pricing
Dimension | Description | Cost/host/hour |
|---|---|---|
ml.m5.12xlarge Inference (Batch) Recommended | Model inference on the ml.m5.12xlarge instance type, batch mode | $20.00 |
ml.m5.12xlarge Inference (Real-Time) Recommended | Model inference on the ml.m5.12xlarge instance type, real-time mode | $10.00 |
ml.m5.12xlarge Training Recommended | Algorithm training on the ml.m5.12xlarge instance type | $10.00 |
ml.m4.4xlarge Inference (Batch) | Model inference on the ml.m4.4xlarge instance type, batch mode | $20.00 |
ml.m5.4xlarge Inference (Batch) | Model inference on the ml.m5.4xlarge instance type, batch mode | $20.00 |
ml.m4.16xlarge Inference (Batch) | Model inference on the ml.m4.16xlarge instance type, batch mode | $20.00 |
ml.m5.2xlarge Inference (Batch) | Model inference on the ml.m5.2xlarge instance type, batch mode | $20.00 |
ml.p3.16xlarge Inference (Batch) | Model inference on the ml.p3.16xlarge instance type, batch mode | $20.00 |
ml.m4.2xlarge Inference (Batch) | Model inference on the ml.m4.2xlarge instance type, batch mode | $20.00 |
ml.c5.2xlarge Inference (Batch) | Model inference on the ml.c5.2xlarge instance type, batch mode | $20.00 |
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Delivery details
Amazon SageMaker algorithm
An Amazon SageMaker algorithm is a machine learning model that requires your training data to make predictions. Use the included training algorithm to generate your unique model artifact. Then deploy the model on Amazon SageMaker for real-time inference or batch processing. Amazon SageMaker is a fully managed platform for building, training, and deploying machine learning models at scale.
Version release notes
It is the second version of the algorithm. It requires consumer loan specific data as input
Additional details
Inputs
- Summary
- Once the model is generated after training, the solution can be used to predict the loss given default for a given new data.
- The new data features should be identical to training data features.
- The name of the new file should be sample_input.csv
- Input MIME type
- text/csv, text/plain
Input data descriptions
The following table describes supported input data fields for real-time inference and batch transform.
Field name | Description | Constraints | Required |
|---|---|---|---|
LossGivenDefault | This columns tells us the Percentage of amount lost when Borrower Defaults. | Type: Continuous
Minimum: 0
Maximum: 1 | Yes |
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