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Salesforce Analytics-Con-202 Exam Syllabus Topics:

SectionWeightObjectives
Design and Troubleshoot Calculations and Workbooks40%- Design visualizations and advanced analytics
  • 1. Recommend advanced chart types and densification
    • 2. Apply Tableau order of operations
      - Implement and optimize calculations
      • 1. Table calculations, date functions, and aggregations
        • 2. Level of Detail (LOD) expressions
          - Optimize workbook performance
          • 1. Leverage performance recordings and caching
            • 2. Identify and resolve performance bottlenecks
              Establish Governance and Support Published Content16%- Apply governance strategy
              • 1. Map governance requirements to Tableau capabilities
                • 2. Security, data quality, and certification strategy
                  - Deploy and manage content lifecycle
                  • 1. Workbook lifecycle and maintenance
                    • 2. Content distribution and publishing strategy
                      Plan and Prepare Data Connections22%- Plan for data transformation
                      • 1. Recommend appropriate data transformation strategy
                        • 2. Specify granularity requirements
                          - Design row-level security (RLS) and advanced connections
                          • 1. Recommend connection methods and Tableau Bridge
                            • 2. Implement RLS and entitlement structures
                              Evaluate Current State22%- Evaluate current data structures
                              • 1. Evaluate data lineage and performance risks
                                • 2. Assess whether existing data supports business needs
                                  - Map current state of analytics to future state
                                  • 1. Map business needs to Tableau capabilities
                                    • 2. Translate analytical requirements using best practices
                                      • 3. Recommend Tableau Server vs Tableau Cloud including migration

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                                        Salesforce Analytics-Con-202 Practice Guide - Analytics-Con-202 Training Materials

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                                        Salesforce Certified Tableau Next Consultant Sample Questions (Q72-Q77):

                                        NEW QUESTION # 72
                                        A Tableau Next Consultant wants to implement a Tableau Agent within Tableau Next to provide conversational insights and automated chart summaries for its sales operations managers. The deployment strategy requires using a preconfigured platform framework to accelerate the setup. How should the consultant deploy this specific conversational analytics capability?

                                        Answer: C

                                        Explanation:
                                        Tableau Agent conversational analytics is delivered through the Analytics and Visualization agent template.
                                        Salesforce's current documentation states that enabling Tableau Agent makes the Analytics and Visualization template and its prebuilt capabilities available in Agentforce Builder or Agentforce Studio. The consultant then creates an agent from that template and includes the Data Analysis subagent to enable conversational analytical responses and generated visualizations.
                                        Therefore, B is correct.
                                        Einstein Discovery Prediction is associated with predictive analytics and is not the preconfigured framework for Tableau Agent's conversational analytics. Tableau Next Marketplace contains reusable analytical assets and templates but is not the mechanism for constructing the core Analytics and Visualization agent.
                                        References/Topics: Agentic Experiences - > Tableau Agent - > Analytics and Visualization Template - > Data Analysis Subagent - > Conversational Analytics.


                                        NEW QUESTION # 73
                                        A Tableau Next Consultant is helping a customer improve their Tableau Agent experience for trending questions. Business users frequently ask questions like, "How has customer satisfaction trended this quarter compared to last?" but results are inconsistent. What is the most effective enhancement to the semantic model to improve these responses?

                                        Answer: C

                                        Explanation:
                                        The most effective improvement is to ensure that time dimensions and metric semantics are clearly and correctly defined. Tableau Agent's Data Analysis capability natively supports trend analysis, period-over- period comparisons, and date filtering, including year, quarter, month, week, day, fiscal periods, and relative date ranges.
                                        For a question such as "How has customer satisfaction trended this quarter compared to last?", Tableau Agent must identify the correct customer-satisfaction measure or metric, understand its business definition, and resolve which date dimension establishes the comparison period. Clear metric descriptions and correct temporal metadata therefore materially improve query generation and response consistency.
                                        Option A could create redundant semantic logic because Tableau Agent already supports period-over-period reasoning natively. A dedicated "Quarter over Quarter" calculated field is unnecessary unless there is genuinely specialized business logic that differs from the standard comparison. Option C is also inappropriate:
                                        Salesforce already provides trend and period-over-period capabilities through the Data Analysis subagent.
                                        Well-designed semantic models-not unnecessary proliferation of specialized agents-are the primary mechanism for improving grounded conversational analytics.
                                        References/Topics: Agentic Experiences - > Tableau Agent - > Trend Analysis - > Period-over-Period Questions - > Semantic Model AI Readiness.


                                        NEW QUESTION # 74
                                        A mature Tableau customer wants to use the Analytics Agent in Tableau Next. However, they have heavily invested in complex data models and calculations within Tableau Cloud Published Data Sources (PDSs) and refuse to rebuild this logic from scratch in Data 360. How should a Tableau Next Consultant meet this requirement using native interoperability?

                                        Answer: B

                                        Explanation:
                                        Tableau Next provides native interoperability with Tableau Cloud Published Data Sources (PDSs). Salesforce allows a consultant to create a Data 360 semantic model by connecting directly to an existing PDS after establishing the required trust between the Salesforce org and Tableau Cloud site.
                                        The PDS remains the external data definition and query source. Tableau Next inherits fields such as their names and data types, and the semantic model can then be enriched with calculated fields, metrics, descriptions, and business context. Critically, Salesforce states that this approach allows organizations to use existing Tableau content without data or metadata migration.
                                        That precisely addresses the customer's concern about preserving substantial prior investment in Tableau Cloud modeling and calculations.
                                        Options A and B introduce mechanisms that are not the native Tableau Next interoperability pattern documented for PDS reuse. There is no requirement to translate the PDS into Snowflake SQL or convert it into a CRM Analytics recipe.
                                        This architecture enables Tableau Next to extend rather than replace mature Tableau investments, while exposing existing governed analytical logic to Tableau Agent.
                                        References/Topics: Embedding, Cross-Cloud, and Interoperability - > Tableau Cloud PDS - > Tableau Semantics - > Create Semantic Model from Published Data Source.


                                        NEW QUESTION # 75
                                        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: C

                                        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 # 76
                                        A Tableau Next Consultant wants to implement a Tableau Agent within Tableau Next to provide conversational insights and automated chart summaries for its sales operations managers. The deployment strategy requires using a preconfigured platform framework to accelerate the setup. How should the consultant deploy this specific conversational analytics capability?

                                        Answer: C


                                        NEW QUESTION # 77
                                        ......

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