Analytics-Con-202 Exam Course & New Analytics-Con-202 Real Test

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Salesforce Analytics-Con-202 Exam Syllabus Topics:

SectionWeightObjectives
Basic Setup & Admin10%- User Access
  • 1. Apply appropriate access to enable users
    - Agentic Analytics
    • 1. Activate Agentic Analytics for users
      - Tableau Next Setup
      • 1. Activate and manage Tableau Next features
        Managing Workspaces & Orgs10%- Personal Org
        • 1. Deploy and manage a Personal Org
          - Workspace and Asset Management
          • 1. Deploy Tableau Next assets
            • 2. Manage and share Tableau Next assets
              Agentic Experiences25%- Analytics Agent
              • 1. Proactive data alerts and notifications
                • 2. Explore data and generate insights
                  - Generative AI
                  • 1. Generative AI capabilities for creating Tableau Next components
                    - Agentic Readiness
                    • 1. Assess and ensure Agentic readiness
                      Visualizations & Dashboards15%- Dashboard Actions
                      • 1. Configure actions within Tableau Next
                        - Visualization and Dashboard Design
                        • 1. Visualization and dashboarding best practices
                          • 2. Design user-friendly Tableau Next assets
                            Data Setup20%- Semantic Models
                            • 1. Components, design, and application of semantic models
                              - Data Architecture and Processing
                              • 1. Determine the appropriate data architecture or data processing approach
                                - Data 360
                                • 1. Data integration, management, preparation, and modeling
                                  Embedding, Cross-Cloud, & Interoperability20%- Salesforce Analytics Integration
                                  • 1. Tableau Next integration with Salesforce analytics platforms
                                    - Tableau Next Apps and Marketplace
                                    • 1. Marketplace offerings
                                      • 2. Tableau Next Apps for Salesforce
                                        - Developer Tools and APIs
                                        • 1. Tools and APIs available for developers
                                          - Cross-Platform Workflows
                                          • 1. Surface Tableau Next assets within user workflows across platforms

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                                            New Analytics-Con-202 Real Test, Analytics-Con-202 Valid Dumps Questions

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                                            Salesforce Certified Tableau Next Consultant Sample Questions (Q74-Q79):

                                            NEW QUESTION # 74
                                            A Tableau Next Consultant is advising a customer on when to use Tableau Agent versus building a traditional Tableau Next dashboard. Which scenario is the best fit for Tableau Agent?

                                            Answer: B

                                            Explanation:
                                            Tableau Agent is optimized for conversational, exploratory analytics in which a business user asks natural- language questions and receives grounded answers and visualizations. A request such as, "What are my top accounts by Annual Contract Value this quarter?" maps directly to Tableau Agent's supported descriptive- analysis capabilities. Salesforce explicitly lists Top-N questions, aggregations, dimensional breakdowns, comparisons, and other business-oriented analytical questions among the supported conversational patterns.
                                            A fixed monthly-close report for a board is better represented by a governed dashboard or reporting asset because its structure, presentation, and recurring content are predetermined. Likewise, Tableau Agent is not positioned as a general-purpose data-science workflow development environment.
                                            The architectural distinction is important for the exam: dashboards provide curated, repeatable analytical experiences, whereas Tableau Agent adds an interactive conversational layer over semantic models. It translates the user's business question into semantic analytical operations and returns contextual text and visual output.
                                            References/Topics: Agentic Experiences - > Analyze and Share Data in Tableau Next - > About Conversational Analytics - > Supported Questions and Surfaces.


                                            NEW QUESTION # 75
                                            A Tableau Next Consultant is demonstrating how Tableau Agent provides transparency for its responses. A user asks Tableau Agent a question and receives a response with a visualization. The user now needs to examine how the agent arrived at the response. Which action must the user take in Tableau Agent to see this information?

                                            Answer: C

                                            Explanation:
                                            The user should select Sources. Tableau Agent's conversational analytics experience exposes a Sources control specifically to provide transparency into how a response was generated.
                                            Salesforce documents that after Tableau Agent returns an analytical answer, users can select Sources to review details about how the agent analyzed the request, including the data sources and metrics used during the analysis. Salesforce also states that conversational analytics responses include information about the sources and reasoning used in the analysis, supporting traceability and user trust.
                                            Option B concerns visualization configuration rather than agent reasoning and source grounding. Option C is not the documented Tableau Agent workflow for exposing reasoning provenance to end users.
                                            This capability is important because Tableau Agent performs semantic queries against the underlying semantic model, synthesizes the returned data into a textual response, and generates a suitable visualization.
                                            Sources helps users understand the analytical basis of that output rather than requiring them to accept an opaque AI-generated answer.
                                            References/Topics: Agentic Experiences - > Tableau Agent - > Conversational Analytics - > Sources - > Response Transparency and Grounding.


                                            NEW QUESTION # 76
                                            A Tableau Next Consultant identifies an issue with the default filtering on a metric embedded on an Opportunity record page. The metric is showing data aggregated for the parent account of the Opportunity, but it should be filtered to the Opportunity level. The consultant has verified that the relevant dimensions are added to the metric definition. Which change should the consultant make to the metric?

                                            Answer: B

                                            Explanation:
                                            The existing parent-account filter is causing the metric to operate at Account scope, so merely adding another filter does not correctly express the desired record context. The consultant should remove that Account-based mapping and configure the metric dimension Opportunity ID to equal the Opportunity ID of the current Salesforce record. Therefore, B is correct.
                                            Salesforce's embedded Tableau Next components support Record Value filtering on Lightning record pages.
                                            With Record Value, the filter dynamically retrieves a field from the Salesforce record currently being viewed and compares it against the selected field or dimension in the Tableau Next data model.
                                            Option A fails to remove the inappropriate parent Account filter, leaving conflicting or overly restrictive context. Option C maps unlike identifiers-Opportunity ID against Account ID-which is logically invalid.
                                            This question tests contextual embedding architecture: the metric definition must expose the required dimension, while Lightning App Builder supplies the current record value used to dynamically scope the embedded metric.
                                            References/Topics: Visualizations and Dashboards - > Embedded Tableau Next Metrics - > Record Value Filters - > Lightning Record Context.


                                            NEW QUESTION # 77
                                            A Tableau Next Consultant is shadowing a client's business analyst who is building a new profitability dashboard in Tableau Next. The analyst knows exactly the business logic they need for a complex "Year- over- Year Weighted Margin" metric, but they are new to the platform and keep getting syntax errors when trying to write the formula. How does generative AI in Tableau Next assist the analyst in this scenario?

                                            Answer: A

                                            Explanation:
                                            Tableau Next provides generative AI capabilities that translate a user's natural-language description of a calculation into a calculated-field formula. This directly addresses scenarios where an analyst understands the required business logic but lacks familiarity with Tableau Next formula syntax.
                                            With Draft with Einstein, the user describes the calculation they need in natural language. Einstein can propose the field name, description, data type, aggregation type, and formula. The agentic calculated-field experience also supports conversational refinement, allowing the user to explain requirements and respond to clarification questions before reviewing the proposed field.
                                            A batch transform, as described in A, is a data-preparation mechanism and is unrelated to helping an analyst overcome formula-authoring syntax problems. C is less accurate because the defining generative-AI capability being tested is the transformation of natural-language analytical intent into a proposed formula.
                                            The generated output remains subject to user review before creation, preserving human control over the final semantic definition while substantially reducing formula-authoring friction.
                                            References/Topics: Agentic Experiences - > Generative AI - > Draft with Einstein/Data Pro - > Natural- Language Calculated Fields.


                                            NEW QUESTION # 78
                                            During a discovery call, a client tells their Tableau Next Consultant that they love the idea of embedding the Analytics and Visualization Agent into an external portal, but that they have three dashboards on the same page: Sales Performance, Risk Exposure, and Regional Revenue. What is true about the agent's capabilities in this scenario?

                                            Answer: A

                                            Explanation:
                                            The Tableau Next Analytics Embedding SDK supports an AnalyticsAgent component with both single- context and multi-component operating modes. In Multi-Component mode, the application omits the contextConfig property. The agent then automatically tracks the embedded AnalyticsDashboard and AnalyticsMetric components present on that page.
                                            Therefore, B directly describes the intended architecture for a portal containing multiple analytical components.
                                            Option A describes single-context mode, where contextConfig explicitly binds the agent to one dashboard, metric, or semantic model. That mode exists but is not a platform limitation. Option C introduces a same- semantic-model restriction that the current Embedding SDK documentation does not impose. The SDK explicitly describes automatic context tracking across embedded dashboard and metric components.
                                            This capability is particularly important in embedded analytics because it allows conversational analytics to understand the broader analytical surface rather than forcing the external application to continually rebind the agent as users move between embedded components.
                                            References/Topics: Embedding, Cross-Cloud, and Interoperability - > Tableau Next Embedding SDK - > AnalyticsAgent - > Multi-Component Mode.


                                            NEW QUESTION # 79
                                            ......

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