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Job Description & How to Apply Below
AI & Self-Service Analytics
Total Exp - 6 years - 12 Years
Overview
Analytics Function Overview
The Analytics function focuses on enabling next-generation Business Intelligence through AI-driven insights, self-service analytics, and conversational reporting capabilities for leading global pharmaceutical organizations. The function partners closely with Commercial, Medical, Market Access, and Executive stakeholders to scale insight delivery while reducing manual reporting effort.
The AI & Self-Service Analytics team plays a critical role in operationalizing AI-assisted analytics, natural language interaction with data, and persona-aligned self-service datasets within enterprise BI platforms such as Tableau, Power BI, and cloud data platforms.
Roles and Responsibilities Summary
• Design and deliver AI-enabled reporting and self-service analytics solutions aligned to pharma commercial and medical use cases
• Support implementation of conversational BI capabilities using tools such as Power BI Copilot, Tableau Pulse, and in-house LLM frameworks
• Translate business questions into AI-assisted insight workflows (e.g., variance explanation, trend detection, anomaly identification)
• Build and curate persona-specific self-service datasets for Analysts, Data Scientists, and Advanced Business Users
• Collaborate with BI Architects and Semantic Layer teams to ensure AI readiness of data products (grain, metadata, KPI logic)
• Configure and validate natural language query patterns mapped to governed KPIs and dimensions
• Develop automated KPI narratives and explanations to support faster decision-making
• Partner with business stakeholders to identify high-value AI use cases for reporting and analytics (e.g., field performance insights, payer mix shifts, launch signals)
• Support UX design for AI interactions, including prompt design, guided queries, and explainability views
• Ensure AI outputs are transparent, explainable, auditable, and compliant with governance guidelines
• Contribute to training materials and enablement content for AI-driven and self-service analytics adoption
• Take ownership of assigned deliverables and support program milestones under guidance of Group Managers / Leads
Core Competencies
Technical Skills
• Power BI (Copilot, AI visuals, semantic models)
• Tableau (Tableau Pulse, metric insights, guided analytics)
• SQL for analytics-ready data validation
• Understanding of semantic layers, KPI definitions, and governed datasets
• Exposure to cloud data platforms (Snowflake, Databricks preferred)
• Familiarity with LLM concepts, embeddings, prompt design, and AI explainability
Domain & Functional Knowledge
• Working knowledge of pharma commercial analytics (sales performance, field effectiveness, market access, omnichannel)
• Understanding of common pharma datasets (CRM activity, sales, claims, payer, digital engagement)
• Ability to frame business questions into AI-assisted analytics patterns
Behavioral & Professional Skills
• Strong stakeholder communication (verbal and written)
• Structured problem-solving and analytical thinking
• Ability to work with cross-functional global teams (business, IT, data governance)
• Attention to detail with a quality-focused mindset
• Adaptability to evolving AI and analytics platforms
• Collaborative and team-oriented approach
Must-Have Skills
• Power BI (including Copilot exposure) or Tableau (including Tableau Pulse)
• SQL and analytical data validation skills
• Strong communication and documentation skills
• Experience supporting self-service analytics or advanced BI users
• Understanding of KPI-driven reporting and semantic models
• Problem-solving and structured thinking
Good-to-Have Skills
• Exposure to conversational analytics or NLP-based querying
• Experience working with AI explainability or insight generation features
• Knowledge of pharma therapy areas or launch analytics
• Familiarity with Databricks, Python, or AI notebooks
• Experience supporting global / multi-region BI programs
Highest Education
• Bachelor’s or Master’s degree in Engineering, Computer Science, Data Analytics, Statistics, or related quantitative field
• Strong academic background with exposure to analytics, data, or AI coursework
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