Generative-AI-Leader Prüfungen - Generative-AI-Leader Prüfungsübungen

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Google Generative-AI-Leader Exam Overview:

Certification Vendor:Google Cloud
Exam Name:Generative AI Leader Certification Exam
Exam Number:Generative-AI-Leader
Exam Price:USD 99 (plus tax where applicable)
Real Exam Qty:50-60
Available Languages:Japanese, Portuguese, Spanish, English
Certificate Validity Period:3 years
Exam Duration:90 minutes
Passing Score:Not publicly disclosed
Exam Format:Multiple choice
Recommended Training:Generative AI Leader Study Guide
Generative AI Leader Training Course
Exam Registration:Google Cloud Certification Registration
Sample Questions:Google Generative-AI-Leader Sample Questions
Exam Way:Online-proctored or onsite-proctored
Pre Condition:No prerequisites required; open to all roles and backgrounds
Official Syllabus URL:https://cloud.google.com/learn/certification/generative-ai-leader

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Google Generative-AI-Leader Prüfungsplan:

ThemaEinzelheiten
Thema 1
  • 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.
Thema 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.
Thema 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.
Thema 4
  • 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.

Google Cloud Certified - Generative AI Leader Exam Generative-AI-Leader Prüfungsfragen mit Lösungen (Q35-Q40):

35. Frage
A marketing agency with a large digital asset library needs a Google Cloud solution to quickly and accurately search its digital files based on visual, spoken, or thematic content. What Google Cloud product should the agency use?

Antwort: B

Begründung:
Google Cloud's Media Search (part of Vertex AI Search / Agent Search for media) is specialized for ingesting, indexing, and retrieving multimedia content-such as video, audio, and visual assets-by understanding spoken dialogue, visual actions, and semantic themes across unstructured digital libraries. Search for commerce and Vision API Product search are tailored to e-commerce product catalogs, while Document search focuses on text-heavy formats (PDFs, docs).


36. Frage
A market research analyst needs a Google Cloud prebuilt generative AI tool to consistently generate weekly reports summarizing key trends and news from publicly available data sources in the technology industry. They want the most efficient process, a consistent report each week covering the latest developments, and to avoid repeatedly specifying the desired industry and types of information to track. What should they do?

Antwort: C

Begründung:
A custom Gem enables the analyst to configure reusable instructions describing the technology industry, the trends and news categories to monitor, and the required weekly-report structure. Once configured, the Gem applies those directions consistently during subsequent interactions, removing the need to rewrite an extensive prompt every week. This supports both efficiency and standardized reporting while allowing Gemini to work with current publicly available information. NotebookLM is primarily grounded in sources uploaded or supplied to a notebook and would be more appropriate for analyzing a defined collection of documents. Drafting from scratch in the Gemini app requires repeated manual prompting, which contradicts the efficiency requirement. Gemini in Docs can assist with writing and collaboration, but it does not by itself preserve a specialized, reusable persona and instruction set. A custom Gem is therefore the best fit.


37. Frage
A manager wants to ensure that only quality data is used in their AI model. Which scenario is most likely to lead to an unfair and biased outcome?

Antwort: B


38. Frage
A large e-commerce company with a vast and frequently updated product catalog finds that customers struggle to find products on their website, and support agents spend too much time finding detailed product information. The company wants to improve search accuracy and efficiency for both customers and support.
What Google Cloud solution should they use?

Antwort: C

Begründung:
This scenario strongly points to the need for accurate and up-to-date information retrieval from a product catalog. Pre-built RAG (Retrieval-Augmented Generation) combined with Vertex AI Search is the ideal solution. Vertex AI Search can index the product catalog, and RAG can then use thisindexed data to ground the responses of a generative AI model, ensuring that both customer searches and support agent queries retrieve precise and relevant product information.
________________________________________


39. Frage
A development team is building an internal knowledge base chatbot to answer employee questions about company policies and procedures. This information is stored across various documents in Google Cloud Storage and is updated regularly by different departments. What is the primary benefit of using Google Cloud's RAG APIs in this scenario?

Antwort: D

Begründung:
The primary benefit of RAG (Retrieval-Augmented Generation) in this context is its ability to ensure the chatbot provides accurate and up-to-date information. By retrieving relevant and recent policy documents from Cloud Storage in real-time and then grounding the LLM's response with this information, the chatbot avoids hallucinating or providing outdated answers, which is crucial for an internal knowledge base.


40. Frage
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