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Amazon AIF-C01 Exam Syllabus Topics:

TopicDetails
Topic 1
  • Security, Compliance, and Governance for AI Solutions: This domain covers the security measures, compliance requirements, and governance practices essential for managing AI solutions. It targets security professionals, compliance officers, and IT managers responsible for safeguarding AI systems, ensuring regulatory compliance, and implementing effective governance frameworks.
Topic 2
  • Fundamentals of AI and ML: This domain covers the fundamental concepts of artificial intelligence (AI) and machine learning (ML), including core algorithms and principles. It is aimed at individuals new to AI and ML, such as entry-level data scientists and IT professionals.
Topic 3
  • Applications of Foundation Models: This domain examines how foundation models, like large language models, are used in practical applications. It is designed for those who need to understand the real-world implementation of these models, including solution architects and data engineers who work with AI technologies to solve complex problems.
Topic 4
  • Guidelines for Responsible AI: This domain highlights the ethical considerations and best practices for deploying AI solutions responsibly, including ensuring fairness and transparency. It is aimed at AI practitioners, including data scientists and compliance officers, who are involved in the development and deployment of AI systems and need to adhere to ethical standards.
Topic 5
  • Fundamentals of Generative AI: This domain explores the basics of generative AI, focusing on techniques for creating new content from learned patterns, including text and image generation. It targets professionals interested in understanding generative models, such as developers and researchers in AI.

Amazon AWS Certified AI Practitioner Sample Questions (Q130-Q135):

NEW QUESTION # 130
Which functionality does Amazon SageMaker Clarify provide?

Answer: D


NEW QUESTION # 131
An AI practitioner has trained a model on a training dataset. The model performs well on the training dat a. However, the model does not perform well on evaluation data. What is the MOST likely cause of this issue?

Answer: C

Explanation:
Comprehensive and Detailed
When a model performs well on training data but poorly on evaluation/test data, it indicates overfitting.
Overfitting: The model memorizes the training data patterns instead of generalizing.
Underfitting (A) means the model performs poorly on both training and test data.
Bias (C) refers to systemic errors in predictions, not this training/test mismatch.
Prompt engineering (B) applies to generative AI, not general ML training models.
Reference:
AWS ML Glossary - Overfitting and Underfitting


NEW QUESTION # 132
What does an F1 score measure in the context of foundation model (FM) performance?

Answer: B

Explanation:
The F1 score is the harmonic mean of precision and recall, making it a balanced metric for evaluating model performance when there is an imbalance between false positives and false negatives. Speed, cost, and energy efficiency are unrelated to the F1 score. References: AWS Foundation Models Guide.


NEW QUESTION # 133
A software company wants to use a large language model (LLM) for workflow automation. The application will transform user messages into JSON files. The company will use the JSON files as inputs for data pipelines.
The company has a labeled dataset that contains user messages and output JSON files.
Which solution will train the LLM for workflow automation?

Answer: B

Explanation:
Fine-tuning is the process of training a pre-trained LLM with a labeled dataset specific to a desired task-in this case, mapping user messages to JSON outputs. Fine-tuning leverages supervised learning to specialize the model's outputs.
* C is correct:
"Fine-tuning is a supervised learning approach in which a model is further trained on a custom, labeled dataset to adapt to a specific use case." (Reference: Amazon Bedrock Fine-Tuning, AWS Certified AI Practitioner Study Guide)
* A is incorrect-unsupervised learning does not use labeled data.
* B (continued pre-training) uses unlabeled data.
* D (RLHF) uses reward signals and human feedback, not direct labeled input/output pairs.


NEW QUESTION # 134
An AI practitioner is developing a prompt for an Amazon Titan model. The model is hosted on Amazon Bedrock. The AI practitioner is using the model to solve numerical reasoning challenges. The AI practitioner adds the following phrase to the end of the prompt: "Ask the model to show its work by explaining its reasoning step by step." Which prompt engineering technique is the AI practitioner using?

Answer: A

Explanation:
Chain-of-thought prompting is a prompt engineering technique where you instruct the model to explain its reasoning step by step, which is particularly useful for tasks involving logic, math, or reasoning.
A is correct: Asking the model to "explain its reasoning step by step" directly invokes chain-of-thought prompting, as documented in AWS and generative AI literature.
B is unrelated (prompt injection is a security concern).
C (few-shot) provides examples, but doesn't specifically require step-by-step reasoning.
D (templating) is about structuring the prompt format.
"Chain-of-thought prompting elicits step-by-step explanations from LLMs, which improves performance on complex reasoning tasks." (Reference: Amazon Bedrock Prompt Engineering Guide, AWS Certified AI Practitioner Study Guide)
"Chain-of-thought prompting elicits step-by-step explanations from LLMs, which improves performance on complex reasoning tasks." (Reference: Amazon Bedrock Prompt Engineering Guide, AWS Certified AI Practitioner Study Guide)


NEW QUESTION # 135
......

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