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Microsoft AI-103 Exam Syllabus Topics:

SectionObjectives
Topic 1: Knowledge Mining and Information Retrieval- RAG (Retrieval Augmented Generation) patterns
- Indexing and semantic search
- Azure AI Search configuration
Topic 2: Plan and Manage Azure AI Solutions- Model selection and lifecycle management
- Azure AI resource provisioning and configuration
- Responsible AI principles and governance
Topic 3: Implement Natural Language Processing Solutions- Language understanding and intent recognition
- Translation and multilingual support
- Text analytics and summarization
Topic 4: Develop Generative AI Applications and Agents- AI agents architecture
  • 1. Agent orchestration and workflows
    • 2. Memory and state management
      - Azure OpenAI Service integration
      • 1. Prompt engineering and prompt flow design
        • 2. Function calling and tool use
          Topic 5: Implement Computer Vision Solutions- OCR and document intelligence
          - Image classification and object detection

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          Microsoft Developing AI Apps and Agents on Azure Sample Questions (Q35-Q40):

          NEW QUESTION # 35
          Hotspot Question
          You have a Microsoft Foundry project that contains an agent.
          You use a GitHub Actions workflow for CI/CD.
          You need to configure the workflow to automatically evaluate the agent when a pull request (PR) is created and prevent branches from merging if the evaluation results do NOT meet the defined thresholds.
          How should you configure the workflow? To answer, select the appropriate options in the answer area.
          NOTE: Each correct selection is worth one point.

          Answer:

          Explanation:


          NEW QUESTION # 36
          Hotspot Question
          You have a Microsoft Foundry project that contains a customer support agent built by using the Foundry Agent Service.
          The agent uploads user-provided screenshots to Azure Storage through a ticketing tool and receives a blob URL for additional reasoning.
          You need to use image moderation during agent runs and prevent harmful content from being returned during runs. Azure AI Content Safety must access the images by using the blob URL.
          The solution must follow the principle of least privilege.
          What should you configure for Content Safety? To answer, select the appropriate options in the answer area.
          NOTE: Each correct selection is worth one point.

          Answer:

          Explanation:


          NEW QUESTION # 37
          You are building a web app named App1 that generates responses by using a model deployed to a Microsoft Foundry project named Project1.
          Before sending the prompts to the model, App1 must retrieve documents by using Azure AI Search.
          You need to integrate Project1 and App1. The solution must meet the following requirements:
          - Multiple client applications must use the same search configuration.
          - A security policy must prevent key-based authentication.
          - Administrative effort must be minimized.
          What should you do?

          Answer: A

          Explanation:
          To meet your security and architecture requirements, you must add the Azure AI Search instance as a Connection within your Azure AI Foundry project and configure Managed Identities for role- based access control (RBAC).
          To securely unify your search configuration without API keys, add the Azure AI Search instance as a shared Connection in your Azure AI Foundry project, disable key authentication on the search service, and authorize your applications using Azure RBAC and Managed Identities.
          Note:
          *-> 1. Create a Project Connection
          Connect Azure AI Search directly inside the Azure AI Foundry hub or project.
          *-> Share the same search service configuration across all connected client applications automatically.
          Centralize your search endpoint details to reduce administrative overhead.
          2. Disable Key Authentication
          3. Enable Managed Identities
          4. Update the Web App Code
          Reference:
          https://learn.microsoft.com/en-us/azure/foundry-classic/tutorials/copilot-sdk-create-resources


          NEW QUESTION # 38
          You have a Microsoft Foundry project named Project1.
          Project1 contains an application that processes PDF vendor invoices.
          You need to configure Azure Document Intelligence in Foundry Tools to generate a Markdown output that preserves the sections and table structure of the PDFs. The solution must minimize development effort.
          What should you do?

          Answer: D

          Explanation:
          Setting the output format parameter to Markdown is the correct and recommended action, but the exact property and enum name depend on whether you are interacting with the REST API directly or using the Python SDK.
          To process PDF invoices and preserve their tables, headings, and visual sections in GitHub Flavored Markdown (GFM), configure your Azure Document Intelligence layout model parameters using the precise syntax detailed below.
          Implementation Details
          Python SDK Syntax: In the Azure Python client library, the parameter name is output_content_format, and its required value is DocumentContentFormat.MARKDOWN (rather than ContentFormat.MARKDOWN, which is used in the .NET C# SDK) Reference:
          https://learn.microsoft.com/en-us/azure/ai-services/document-intelligence/concept/markdown-elements


          NEW QUESTION # 39
          You have an Azure Speech in Foundry Tools resource that hosts a custom speech to text model deployed to a custom endpoint. An agent uses the endpoint to perform real-time speech recognition.
          You are approaching the expiration date of the custom speech to text model.
          What is the expected behavior when the model expires?

          Answer: A

          Explanation:
          When the custom speech-to-text model expires, the real-time endpoint will automatically fall back to using the most recent base model for that locale.
          Because of this automated fallback design, your agent's real-time speech recognition streams will not fail or throw a connection error. However, you will likely experience a drop in transcription accuracy, as the fallback base model lacks the domain-specific vocabulary, acronyms, or unique audio adaptations built into your custom model.
          Immediate Impact Summary
          Real-Time Endpoints: Continue to process requests. The endpoint swaps the expired custom model for the newest standard base model behind the scenes.
          Batch Transcriptions (If used): Any batch transcription jobs explicitly targeting the expired custom model ID will fail with a 4xx error code.
          Customization Loss: Specific jargon, formatting rules, or accents trained into your model will temporarily stop applying to incoming agent audio.
          Reference:
          https://learn.microsoft.com/en-us/azure/ai-services/speech-service/how-to-custom-speech-model-and-endpoint-lifecycle


          NEW QUESTION # 40
          ......

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