Agentforce-Specialist PDF問題サンプル & Agentforce-Specialist再テスト

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Salesforce Agentforce-Specialist 認定試験の出題範囲:

トピック出題範囲
トピック 1
  • 開発ライフサイクル:この領域では、テストセンターにおけるテストエージェント、サンドボックスから本番環境へのデプロイ、エージェントの導入と監視の管理について説明します。
トピック 2
  • Agentforce 用データ クラウド: このドメインでは、Agentforce データ ライブラリの種類、チャンキングとインデックス作成による非構造化データを用いた応答の改善、リトリーバーの理解、キーワード、ベクトル、またはハイブリッド検索タイプの選択について説明します。
トピック 3
  • プロンプトエンジニアリング:このセクションでは、プロンプトビルダーの使用、ユーザーロールの管理、フィールド生成とフレックスタイプを使用したプロンプトテンプレートの作成、グラウンディング手法の選択、効果的なプロンプトのためのベストプラクティスの適用に焦点を当てます。
トピック 4
  • AIエージェント:この領域では、エージェントの動作設定、推論エンジンの理解、エージェントタイプごとのトピックとアクションの選択、エージェントユーザーのセキュリティ管理、適切なエージェントタイプの選択、およびエージェントと各種チャネルの接続について説明します。
トピック 5
  • マルチエージェント相互運用性:このドメインでは、モデルコンテキストプロトコル(MCP)、エージェント間の通信、およびシステム間のやり取りにエージェントAPIを使用するタイミングについて説明します。

>> Agentforce-Specialist PDF問題サンプル <<

Agentforce-Specialist実際試験の質問、Agentforce-Specialist模擬試験問題集

私たちSalesforceは1日24時間顧客にオンライン顧客サービスを提供し、長距離オンラインでクライアントを支援する専門スタッフを提供します。 販売前または販売後に提供するSalesforce Certified Agentforce Specialist (AI-201)ガイドトレントについて質問や疑問がある場合は、お問い合わせください。Agentforce-Specialist試験教材の使用に関する問題の解決を支援するために、カスタマーサービスと専門スタッフをお送りします。 。 クライアントは、メールを送信するか、オンラインで問い合わせることができます。 私たちはできるだけ早くあなたの問題を解決し、最高のサービスを提供します。 JPTestKingアフターサービスは、問題を迅速に解決し、お金を無駄にしないため、素晴らしいものです。 Agentforce-Specialist試験トレントに満足できない場合は、製品を返品して全額払い戻すことができます。

Salesforce Certified Agentforce Specialist (AI-201) 認定 Agentforce-Specialist 試験問題 (Q24-Q29):

質問 # 24
Cloud Kicks is developing a prompt template in a sandbox and has created multiple saved versions during testing. Cloud Kicks is now preparing to move the template to production.
What is a consideration when deploying the template to production?

正解:A

解説:
The correct answer is C because prompt template versioning is part of the prompt template metadata lifecycle. When a prompt template is moved between environments, specialists must account for versions stored with the template in the source org. That is why template version management matters before deployment; test versions, inactive versions, and production-ready versions can all affect the metadata package. Option A is wrong because earlier versions do not have to be manually activated before deployment. Option B is wrong because deployment does not simply wipe all history and retain only one replacement version. Salesforce's CLI considerations for Prompt Builder confirm that template versions are represented in deployable XML and can be managed during deployment, including deletion behavior in the target org.


質問 # 25
Universal Containers (UC) currently tracks Leads with a custom object. UC is preparing to implement the Sales Development Representative (SDR) Agent. Which consideration should UC keep in mind?

正解:B

解説:
Comprehensive and Detailed In-Depth Explanation:
Universal Containers (UC) uses a custom object for Leads and plans to implement the Agentforce Sales Development Representative (SDR) Agent. The SDR Agent is a prebuilt, configurable AI agent designed to assist sales teams by qualifying leads and scheduling meetings. Let's evaluate the options based on its functionality and limitations.
* Option A: Agentforce SDR only works with the standard Lead object.Per Salesforce documentation, the Agentforce SDR Agent is specifically designed to interact with thestandard Lead objectin Salesforce. It includes preconfigured logic to qualify leads, update lead statuses, and schedule meetings, all of which rely on standard Lead fields (e.g., Lead Status, Email, Phone). Since UC tracks leads in a custom object, this is a critical consideration-they would need to migrate data to the standard Lead object or create a workaround (e.g., mapping custom object data to Leads) to leverage the SDR Agent effectively. This limitation is accurate and aligns with the SDR Agent's out-of-the-box capabilities.
* Option B: Agentforce SDR only works on Opportunities.The SDR Agent's primary focus is lead qualification and initial engagement, not opportunity management. Opportunities are handled by other roles (e.g., Account Executives) and potentially other Agentforce agents (e.g., Sales Agent), not the SDR Agent. This option is incorrect, as it misaligns with the SDR Agent's purpose.
* Option C: Agentforce SDR only supports custom objects associated with Accounts.There's no evidence in Salesforce documentation that the SDR Agent supports custom objects, even those related to Accounts. The SDR Agent is tightly coupled with the standard Lead object and does not natively extend to custom objects, regardless of their relationships. This option is incorrect.
Why Option A is Correct:
The Agentforce SDR Agent's reliance on the standard Lead object is a documented constraint. UC must consider this when planning implementation, potentially requiring data migration or process adjustments to align their custom object with the SDR Agent's capabilities. This ensures the agent can perform its intended functions, such as lead qualification and meeting scheduling.
References:
Salesforce Agentforce Documentation: SDR Agent Setup- Specifies the SDR Agent's dependency on the standard Lead object.
Trailhead: Explore Agentforce Sales Agents- Describes SDR Agent functionality tied to Leads.
Salesforce Help: Agentforce Prebuilt Agents- Confirms Lead object requirement for SDR Agent.


質問 # 26
Universal Containers (UC) wants to use Flow to bring data from unified Data Cloud objects to prompt templates.
Which type of flow should UC use?

正解:B

解説:
In this scenario,Universal Containerswants to bring data fromunified Data Cloud objectsinto prompt templates, and the best way to do that is through aData Cloud-triggered flow. This type of flow is specifically designed to trigger actions based on data changes within Salesforce Data Cloud objects.
Data Cloud-triggered flows can listen for changes in the unified data model and automatically bring relevant data into the system, making it available for prompt templates. This ensures that the data is both real-time and up-to-date when used in generative AI contexts.
For more detailed guidance, refer to Salesforce documentation onData Cloud-triggered flowsandData Cloud integrationswith generative AI solutions.


質問 # 27
A data scientist needs to view and manage models in Einstein Studio, and also needs to create prompt templates in Prompt Builder. Which permission sets should an Agentforce Specialist assign to the data scientist?

正解:C

解説:
The data scientist requires permissions for Einstein Studio (model management) and Prompt Builder (template creation). Note: "Einstein Studio" may be a misnomer for Data Cloud's model management or a related tool, but we'll interpret based on context. Let's evaluate.
Option A: Prompt Template Manager and Prompt Template UserThere's no distinct "Prompt Template Manager" or "Prompt Template User" permission set in Salesforce-Prompt Builder access is typically via
"Einstein Generative AI User" or similar. This option lacks coverage for Einstein Studio/Data Cloud, making it incorrect.
Option B: Data Cloud Admin and Prompt Template ManagerThe "Data Cloud Admin" permission set grants access to manage models in Data Cloud (assumed as Einstein Studio's context), including viewing and editing AI models. "Prompt Template Manager" isn't a real set, but Prompt Builder creation is covered by "Einstein Generative AI Admin" or similar admin-level access (assumed intent). This combination approximates the needs, making it the closest correct answer despite naming ambiguity.
Option C: Prompt Template User and Data Cloud Admin"Prompt Template User" isn't a standard set, and user-level access (e.g., Einstein Generative AI User) typically allows execution, not creation. The data scientist needs to create templates, so this lacks sufficient Prompt Builder rights, making it incorrect.
Why Option B is Correct (with Caveat):
"Data Cloud Admin" covers model management in Data Cloud (likely intended as Einstein Studio), and
"Prompt Template Manager" is interpreted as admin-level Prompt Builder access (e.g., Einstein Generative AI Admin). Despite naming inconsistencies, this fits the requirements per Salesforce permissions structure.
References:
Salesforce Data Cloud Documentation: Permissions - Details Data Cloud Admin for models.
Trailhead: Set Up Einstein Generative AI - Covers Prompt Builder admin access.
Salesforce Help: Agentforce Permission Sets - Aligns with admin-level needs.


質問 # 28
Universal Containers (UC) wants to implement an AI-powered customer service agent that can:
* Retrieve proprietary policy documents that are stored as PDFs.
* Ensure responses are grounded in approved company data, not generic LLM knowledge.What should UC do first?

正解:A

解説:
Comprehensive and Detailed In-Depth Explanation:
To implement an AI-powered customer service agent that retrieves proprietary policy documents (stored as PDFs) and ensures responses are grounded in approved company data, UC must first establish a foundation for the AI to access and use this data. TheAgentforce Data Library(Option A) is the correct starting point. A Data Library allows UC to upload PDFs containing policy documents, index them into Salesforce Data Cloud' s vector database, and make them available for AI retrieval. This setup ensures the agent can perform Retrieval-Augmented Generation (RAG), grounding its responses in the specific, approved content from the PDFs rather than relying on generic LLM knowledge, directly meeting UC's requirements.
* Option B: Expanding the AI agent's scope to search all Salesforce records is too broad and unnecessary at this stage. The requirement focuses on PDFs with policy documents, not all Salesforce data (e.g., cases, accounts), making this premature and irrelevant as a first step.
* Option C: "Add the files to the content, and then select the data library option" is vague and not a precise process in Agentforce. While uploading files is part of setting up a Data Library, the phrasing suggests adding files to Salesforce Content (e.g., ContentDocument) without indexing, which doesn't enable AI retrieval. Setting up the Data Library (A) encompasses the full process correctly.
* Option A: This is the foundational step-creating a Data Library ensures the PDFs are uploaded, indexed, and retrievable by the agent, fulfilling both retrieval and grounding needs.
Option A is the correct first step for UC to achieve its goals.
:
Salesforce Agentforce Documentation: "Set Up a Data Library" (Salesforce Help:https://help.salesforce.com/s
/articleView?id=sf.agentforce_data_library.htm&type=5)
Salesforce Data Cloud Documentation: "Ground AI Responses with Data Cloud" (https://help.salesforce.com/s
/articleView?id=sf.data_cloud_agentforce.htm&type=5)


質問 # 29
......

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