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Amazon AWS Certified Machine Learning Engineer - Associate Sample Questions (Q79-Q84):
NEW QUESTION # 79
A company has used Amazon SageMaker to deploy a predictive ML model in production. The company is using SageMaker Model Monitor on the model. After a model update, an ML engineer notices data quality issues in the Model Monitor checks.
What should the ML engineer do to mitigate the data quality issues that Model Monitor has identified?
- A. Adjust the model's parameters and hyperparameters.
- B. Create a new baseline from the latest dataset. Update Model Monitor to use the new baseline for evaluations.
- C. Initiate a manual Model Monitor job that uses the most recent production data.
- D. Include additional data in the existing training set for the model. Retrain and redeploy the model.
Answer: B
Explanation:
When Model Monitor identifies data quality issues, it might be due to a shift in the data distribution compared to the original baseline. By creating a new baseline using the most recent production data and updating Model Monitor to evaluate against this baseline, the ML engineer ensures that the monitoring is aligned with the current data patterns. This approach mitigates false positives and reflects the updated data characteristics without immediately retraining the model.
NEW QUESTION # 80
An ML engineer is evaluating several ML models and must choose one model to use in production. The cost of false negative predictions by the models is much higher than the cost of false positive predictions.
Which metric finding should the ML engineer prioritize the MOST when choosing the model?
- A. Low recall
- B. High precision
- C. High recall
- D. Low precision
Answer: C
Explanation:
Recall measures the ability of a model to correctly identify all positive cases (true positives) out of all actual positives, minimizing false negatives. Since the cost of false negatives is much higher than falsepositives in this scenario, the ML engineer should prioritize models with high recall to reduce the likelihood of missing positive cases.
NEW QUESTION # 81
A company wants to improve the sustainability of its ML operations.
Which actions will reduce the energy usage and computational resources that are associated with the company's training jobs? (Choose two.)
- A. Use PyTorch or TensorFlow with the distributed training option.
- B. Use Amazon SageMaker Debugger to stop training jobs when non-converging conditions are detected.
- C. Use Amazon SageMaker Ground Truth for data labeling.
- D. Use AWS Trainium instances for training.
- E. Deploy models by using AWS Lambda functions.
Answer: B,D
Explanation:
SageMaker Debuggercan identify when a training job is not converging or is stuck in a non-productive state.
By stopping these jobs early, unnecessary energy and computational resources are conserved, improving sustainability.
AWS Trainiuminstances are purpose-built for ML training and are optimized for energy efficiency and cost- effectiveness. They use less energy per training task compared to general-purpose instances, making them a sustainable choice.
NEW QUESTION # 82
A company has deployed an XGBoost prediction model in production to predict if a customer is likely to cancel a subscription. The company uses Amazon SageMaker Model Monitor to detect deviations in the F1 score.
During a baseline analysis of model quality, the company recorded a threshold for the F1 score. After several months of no change, the model's F1 score decreases significantly.
What could be the reason for the reduced F1 score?
- A. Incorrect ground truth labels were provided to Model Monitor during the calculation of the baseline.
- B. Concept drift occurred in the underlying customer data that was used for predictions.
- C. The original baseline data had a data quality issue of missing values.
- D. The model was not sufficiently complex to capture all the patterns in the original baseline data.
Answer: B
Explanation:
* Problem Description:
* The F1 score, which is a balance of precision and recall, has decreased significantly. This indicates the model's predictions are no longer aligned with the real-world data distribution.
* Why Concept Drift?
* Concept driftoccurs when the statistical properties of the target variable or features change over time. For example, customer behaviors or subscription cancellation patterns may have shifted, leading to reduced model accuracy.
* Signs of Concept Drift:
* Deviation in performance metrics (e.g., F1 score) over time.
* Declining prediction accuracy for certain groups or scenarios.
* Solution:
* Monitor for drift using tools like SageMaker Model Monitor.
* Regularly retrain the model with updated data to account for the drift.
* Why Not Other Options?:
* B: Model complexity is unrelated if the model initially performed well.
* C: Data quality issues would have been detected during baseline analysis.
* D: Incorrect ground truth labels would have resulted in a consistently poor baseline.
Conclusion: The decrease in F1 score is most likely due toconcept driftin the customer data, requiring retraining of the model with new data.
NEW QUESTION # 83
An ML engineer needs to use AWS CloudFormation to create an ML model that an Amazon SageMaker endpoint will host.
Which resource should the ML engineer declare in the CloudFormation template to meet this requirement?
- A. AWS::SageMaker::Endpoint
- B. AWS::SageMaker::NotebookInstance
- C. AWS::SageMaker::Pipeline
- D. AWS::SageMaker::Model
Answer: D
Explanation:
The AWS::SageMaker::Model resource in AWS CloudFormation is used to create an ML model in Amazon SageMaker. This model can then be hosted on an endpoint by using the AWS::SageMaker::Endpoint resource. The model resource defines the container or algorithm to use for hosting and the S3 location of the model artifacts.
NEW QUESTION # 84
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