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AIF-C01 Practice Questions

AWS Certified AI Practitioner Exam

Last Update 11 hours ago
Total Questions : 365

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Question # 51

An AI practitioner is using an Amazon SageMaker notebook to train an ML prediction model for fraud detection. The company wants the model to be accurate for an unseen dataset.

Which two characteristics does the AI practitioner want the model to have?

Options:

A.  

High variance / high bias

B.  

High variance / low bias

C.  

Low variance / high bias

D.  

Low variance / low bias

Discussion 0
Question # 52

A company is monitoring a predictive model by using Amazon SageMaker Model Monitor. The company notices data drift beyond a defined threshold. The company wants to mitigate a potentially adverse impact on the predictive model.

Options:

A.  

Restart the SageMaker AI endpoint.

B.  

Adjust the monitoring sensitivity.

C.  

Re-train the model with fresh data.

D.  

Set up experiments tracking.

Discussion 0
Question # 53

A company is developing an editorial assistant application that uses generative AI. During the pilot phase, usage is low and application performance is not a concern. The company cannot predict application usage after the application is fully deployed and wants to minimize application costs.

Which solution will meet these requirements?

Options:

A.  

Use GPU-powered Amazon EC2 instances.

B.  

Use Amazon Bedrock with Provisioned Throughput.

C.  

Use Amazon Bedrock with On-Demand Throughput.

D.  

Use Amazon SageMaker JumpStart.

Discussion 0
Question # 54

A company uses an Amazon Bedrock foundation model (FM) to summarize documents for an internal use case. The company trained a custom model in Amazon Bedrock to improve the quality of the model’s summarizations. The company needs a solution to use the customized model on Amazon Bedrock.

Which solution will meet this requirement?

Options:

A.  

Purchase Provisioned Throughput for the custom model.

B.  

Deploy the custom model in an Amazon SageMaker AI endpoint for real-time inference.

C.  

Register the model with the Amazon SageMaker Model Registry.

D.  

Update the approval status of the model version to Approved.

Discussion 0
Question # 55

A company is using Amazon SageMaker to develop AI models.

Select the correct SageMaker feature or resource from the following list for each step in the AI model lifecycle workflow. Each

SageMaker feature or resource should be selected one time or not at all. (Select TWO.)

SageMaker Clarify

SageMaker Model Registry

SageMaker Serverless Inference

Question # 55

Options:

Discussion 0
Question # 56

A company wants to assess the costs that are associated with using a large language model (LLM) to generate inferences. The company wants to use Amazon Bedrock to build generative AI applications.

Which factor will drive the inference costs?

Options:

A.  

Number of tokens consumed

B.  

Temperature value

C.  

Amount of data used to train the LLM

D.  

Total training time

Discussion 0
Question # 57

An AI practitioner needs to improve the accuracy of a natural language generation model. The model uses rapidly changing inventory data.

Which technique will improve the model's accuracy?

Options:

A.  

Transfer learning

B.  

Federated learning

C.  

Retrieval Augmented Generation (RAG)

D.  

One-shot prompting

Discussion 0
Question # 58

A medical company wants to develop an AI application that can access structured patient records, extract relevant information, and generate concise summaries.

Which solution will meet these requirements?

Options:

A.  

Use Amazon Comprehend Medical to extract relevant medical entities and relationships. Apply rule-based logic to structure and format summaries.

B.  

Use Amazon Personalize to analyze patient engagement patterns. Integrate the output with a general purpose text summarization tool.

C.  

Use Amazon Textract to convert scanned documents into digital text. Design a keyword extraction system to generate summaries.

D.  

Implement Amazon Kendra to provide a searchable index for medical records. Use a template-based system to format summaries.

Discussion 0
Question # 59

A company has deployed an ML model. The company wants to provide external customers with secure access to the model through the customers' own applications.

Which solution will meet these requirements?

Options:

A.  

Use a custom script in the customers' application for authentication.

B.  

Store model credentials and share them with the customers directly for authentication.

C.  

Create a secure API endpoint that customers can use.

D.  

Embed the model directly into the customers' applications.

Discussion 0
Question # 60

What is tokenization used for in natural language processing (NLP)?

Options:

A.  

To encrypt text data

B.  

To compress text files

C.  

To break text into smaller units for processing

D.  

To translate text between languages

Discussion 0
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