[NEW] Google Cloud Generative AI Leader - 4 Full Mock Exams
Master the Google Cloud Generative AI Leader exam! 200 unique questions covering AI fundamentals, Google Cloud offerings
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768
students
200 questions
content
Jun 2025
last update
$19.99
regular price
What you will learn
Define core Generative AI concepts and terminology.
Differentiate between supervised, unsupervised, and reinforcement learning.
Identify key stages of the machine learning lifecycle.
Explain characteristics of structured vs. unstructured data.
Recognize the importance of data quality and accessibility.
Choose appropriate foundation models for business needs.
Describe Google Cloud's AI-first approach and innovation.
Explain Google Cloud's enterprise-ready AI platform features.
Identify Google Cloud's AI-optimized infrastructure components.
Understand Google Cloud's comprehensive AI ecosystem.
Recognize the benefits of Google Cloud's open approach to AI.
Identify Google Cloud's prebuilt AI offerings for AI-powered work.
Explain Vertex AI Search for enterprise search and recommendations.
Understand Google's Customer Engagement Suite capabilities.
Utilize Vertex AI Platform for building and deploying ML models.
Describe Vertex AI Agent Builder for custom AI agents.
Determine when to use Google AI Studio vs. Vertex AI Studio.
Define the purpose and types of tooling for Gen AI agents.
Identify common limitations of foundation models (e.g., bias, hallucinations).
Apply prompt engineering techniques for improved AI outputs.
Explain the concept of grounding LLMs with various data types.
Describe how Retrieval-Augmented Generation (RAG) enhances model output.
Control AI model behavior using sampling parameters (e.g., temperature, Top-P).
Explain Human-in-the-Loop (HITL) for effective model oversight.
Recognize Google Cloud practices for continuous model monitoring.
Identify key factors influencing Gen AI solution development.
Explain the importance of security throughout the ML lifecycle.
Describe privacy considerations like data anonymization.
Understand the importance of responsible AI, accountability, and explainability.
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6628045
udemy ID
21/05/2025
course created date
08/07/2025
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