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Google Generative-AI-Leader Exam Syllabus Topics:

TopicDetails
Topic 1
  • Google Cloud’s Generative AI Offerings: This section of the exam measures the skills of Cloud Architects and highlights Google Cloud’s strengths in generative AI. It emphasizes Google’s AI-first approach, enterprise-ready platform, and open ecosystem. Candidates will learn about Google’s AI infrastructure, including TPUs, GPUs, and data centers, and how the platform provides secure, scalable, and privacy-conscious solutions. The section also explores prebuilt AI tools such as Gemini, Workspace integrations, and Agentspace, while demonstrating how these offerings enhance customer experience and empower developers to build with Vertex AI, RAG capabilities, and agent tooling.
Topic 2
  • Fundamentals of Generative AI: This section of the exam measures the skills of AI Engineers and focuses on the foundational concepts of generative AI. It covers the basics of artificial intelligence, natural language processing, machine learning approaches, and the role of foundation models. Candidates are expected to understand the machine learning lifecycle, data quality, and the use of structured and unstructured data. The section also evaluates knowledge of business use cases such as text, image, code, and video generation, along with the ability to identify when and how to select the right model for specific organizational needs.
Topic 3
  • Business Strategies for a Successful Generative AI Solution: This section of the exam measures the skills of Cloud Architects and evaluates the ability to design, implement, and manage enterprise-level generative AI solutions. It covers the decision-making process for selecting the right solution, integrating AI into an organization, and measuring business impact. A strong emphasis is placed on secure AI practices, highlighting Google’s Secure AI Framework and cloud security tools, as well as the importance of responsible AI, including fairness, transparency, privacy, and accountability.
Topic 4
  • Techniques to Improve Generative AI Model Output: This section of the exam measures the skills of AI Engineers and focuses on improving model reliability and performance. It introduces best practices to address common foundation model limitations such as bias, hallucinations, and data dependency, using methods like retrieval-augmented generation, prompt engineering, and human-in-the-loop systems. Candidates are also tested on different prompting techniques, grounding approaches, and the ability to configure model settings such as temperature and token count to optimize results.

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Google Cloud Certified - Generative AI Leader Exam Sample Questions (Q82-Q87):

NEW QUESTION # 82
An organization needs an AI tool to analyze and summarize lengthy customer feedback text transcripts. You need to choose a Google foundation model with a large context window. What foundation model should the organization choose?

Answer: A

Explanation:
Gemini models are known for their large context windows, making them highly suitable for processing and summarizing lengthy texts like customer feedback transcripts. CodeGemma is specialized for code, Imagen for image generation, and Chirp for speech.
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NEW QUESTION # 83
A company wants to use an AI agent to automate some tasks. They want everyone to understand the different functions of an AI agent. What is the function of an AI agent in the context of gen AI?

Answer: D

Explanation:
An AI agent, especially in the context of generative AI, is designed to be more autonomous and capable than a simple model. Its function is to understand a goal, analyze a situation, leverage various tools (including other generative AI models or external APIs), and make decisions or take actions to achieve that goal, often with minimal human intervention.
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NEW QUESTION # 84
An organization wants to automate initial customer support inquiries and provide instant responses to common questions on their website and app, aiming to improve customer service availability and reduce the workload on their live agent team for routine issues. They need a solution that can understand and respond to customer queries in a natural and engaging way, and can be built with options for both rule-based logic and generative AI capabilities. What component of Google ' s Customer Engagement Suite should they use?

Answer: B

Explanation:
Conversational Agents are designed to create virtual agents that communicate naturally with customers through websites, applications, messaging systems, and voice channels. They can combine deterministic flows and rule-based controls with generative AI capabilities, making them suitable for handling common questions while supporting more flexible conversations. Automating routine inquiries improves availability and reduces the volume of interactions transferred to human agents. Google Cloud Contact Center as a Service supplies the wider contact-center infrastructure but is not specifically the virtual-agent building component. Agent Assist supports human representatives during live interactions instead of independently handling initial inquiries. Conversational Insights analyzes completed conversations to identify trends, topics, sentiment, and performance. Because the organization needs an automated, customer-facing conversational solution supporting both rules and generative AI, Conversational Agents is the correct component.


NEW QUESTION # 85
What is the function of the platform layer in the generative AI (gen AI) landscape?

Answer: D

Explanation:
The platform layer supplies the development environment and operational tools required to build, customize, deploy, and manage generative AI solutions. It connects foundation models and infrastructure with developers and organizations creating applications. Google Cloud's Vertex AI is an example: it provides access to models, prompt-design tools, tuning capabilities, evaluation services, deployment facilities, and model- management functions. Option A describes the application layer, where end users directly consume AI capabilities. Option B more narrowly describes access to the model layer rather than the complete function of a platform. Option D describes the infrastructure layer, which supplies processors, storage, networking, and other computational resources. Therefore, providing tools for interacting with models and building and deploying AI solutions is the platform layer's defining function.


NEW QUESTION # 86
An organization is building a generative AI agent for employee travel bookings. The agent needs to connect to external flight and hotel systems for availability, pricing, and reservations. They implement the most simple and effective way for the agent to interact with the external travel provider system, following Google Cloud- recommended practices. What method should they use?

Answer: A

Explanation:
Extensions provide a standardized mechanism through which an AI agent can invoke external APIs and complete real-world actions. A travel extension can connect the agent to flight and hotel services, pass structured parameters, retrieve current availability and prices, and submit reservations. This is more maintainable and consistent than embedding separate custom functions directly inside the agent. Pre-loaded data stores cannot satisfy the requirement because availability and pricing change continuously, while reservations require transactional access to the provider's live system. "Plugins" is not the recommended Google Cloud mechanism identified for this agent-integration scenario. Extensions enable agents to move beyond answering questions by securely communicating with external services through defined interfaces.
Consequently, they are the simplest and most effective Google-recommended method for integrating the travel agent with provider APIs.


NEW QUESTION # 87
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