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Case studyAn ML engineer is developing a fraud detection model on AWS.

Case study

An ML engineer is developing a fraud detection model on AWS. The training dataset includes transaction logs, customer profiles, and tables from an on-premises MySQL database. The transaction logs and customer profiles are stored in Amazon S3.

The dataset has a class imbalance that affects the learning of the model ' s algorithm. Additionally, many of the features have interdependencies. The algorithm is not capturing all the desired underlying patterns in the data.

The ML engineer needs to use an Amazon SageMaker built-in algorithm to train the model.

Which algorithm should the ML engineer use to meet this requirement?

A.

LightGBM

B.

Linear learner

C.

К-means clustering

D.

Neural Topic Model (NTM)

Amazon Web Services MLA-C01 Summary

  • Vendor: Amazon Web Services
  • Product: MLA-C01
  • Update on: Jun 18, 2026
  • Questions: 241
Price: $52.5  $149.99
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