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A company deploys a custom ML model on Amazon SageMaker AI.

A company deploys a custom ML model on Amazon SageMaker AI. The company uses the model to build a generative AI application for a healthcare recommendation system.

The company tests the application and finds a potential bias issue. The application consistently recommends different treatment approaches for patients who have identical medical conditions based on patient demographic information.

The company needs a solution to ensure that the application does not generate biased recommendations.

Which solution will meet this requirement?

A.

Use SageMaker Clarify to detect bias patterns. Collect and use additional balanced training data. Use the data to retrain the model.

B.

Implement prompt engineering techniques to explicitly instruct the model to provide fair recommendations regardless of demographics.

C.

Apply content filtering by using Amazon Comprehend to remove potentially biased recommendations before they reach users.

D.

Create separate foundation model (FM) endpoints for each demographic group to provide specialized care recommendations.

Amazon Web Services AIF-C01 Summary

  • Vendor: Amazon Web Services
  • Product: AIF-C01
  • Update on: Feb 3, 2026
  • Questions: 365
Price: $52.5  $149.99
Buy Now AIF-C01 PDF + Testing Engine Pack

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