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Director, Enterprise Data & Analytics Architect - Lilly USA Commercial Technology

Eli Lilly

Director, Enterprise Data & Analytics Architect - Lilly USA Commercial Technology

full-timePosted: Aug 24, 2026Updated: Sep 1, 2026Bengaluru, India

Job Description

At Lilly, the work is demanding because patients are waiting. We unite caring with discovery to help make life better for people around the world, knowing that every decision, every detail, and every day matters. Headquartered in Indianapolis, Indiana, our over 50,000 employees around the globe take on complex challenges to discover and deliver life-changing medicines, strengthen how health is understood and managed, and support the communities we serve. This is hard, urgent, selfless work—but it’s work worth doing. If you’re driven by purpose and ready to bring your best to work that truly matters for patients, we invite you to join us. Job Title: Director – Enterprise Data & Analytics Architect, Lilly USA Location: Bangalore, IndiaEmployment Type: Full-TimeExperience: 15+ YearsPath Level : P4About the RoleThe Director – Lilly USA Data & Analytics Enterprise Architect will play a pivotal role in designing and scaling Lilly’s Data Intelligence & AI platform on cloud environments such as AWS. This role focuses on leveraging deep Databricks Lakehouse expertise to deliver secure, scalable, and high-performing data architectures including AI/ML, analytics, and data product development across LillyUSA Commercial Technology, enabling smarter sales execution, customer engagement, and commercial analytics. The ideal candidate will blend deep technical expertise, data platform design experience, and strategic vision to enable LillyUSA’s transformation into an AI-driven enterprise.Key ResponsibilitiesEnterprise Ownership & AccountabilityOwn end-to-end architecture decisions for enterprise data platforms supporting LillyUSA commercial domains — including Sales & Marketing, HCP Engagement, iQ Analytics, and Commercial Operations.Define data platform strategy, semantic layer, ontologies, knowledge graphs, and reference architectures for AI-driven ecosystems that serve LillyUSA’s commercial intelligence platforms.Drive adoption of modern data architecture patterns (Data Mesh, Data Products, Lakehouse, Medallion)Translate business priorities into data platform investments with measurable outcomes, including LillyUSA commercial priorities such as next-best-action, HCP segmentation, sales forecasting, and promotional effectivenessPlatform & Architecture LeadershipDesign, implement, and optimize Lakehouse architectures using Databricks, Delta Lake, and Unity Catalog across LillyUSA’s AWS-based data platform, ensuring alignment with LUSA commercial data products and the IRIS Redshift analytical layer.Operationalize data pipelines, Observability (data + platform monitoring) to optimise cost, infrastructure & resources along with FinOps accountability for LillyUSA commercial workloads.Ensure architectural alignment with cloud security, governance, and compliance standards including GxP, HIPAA, and Lilly’s internal data governance policies applicable to US commercial data.Strengthen AI Agents / GenAI / Future AI ReadinessCollaborate with LillyUSA Data Scientists, ML Engineers, and AI Product Teams — including the iQ, Venturo, and Commercial Technology practices — to operationalize models using Databricks MLflow and Feature Store.Design data readiness pipelines that enable AI/ML experimentation, model training, and inference for LillyUSA commercial use cases such as promotional response modelling, territory planning, and patient identification.Implement MLOps practices for reproducibility, monitoring, and lifecycle management of ML models.3. Data Governance & OptimizationImplement data access, lineage, and stewardship frameworks using Unity Catalog, Purview, or AWS Glue Data Catalog, aligned to LillyUSA’s Master Data Management (MDM) standards and HCP/HCO data governance requirements.Optimize Databricks performance, scalability, and cost through intelligent cluster configuration and workload tuning.Champion metadata management, data observability, and quality frameworks to support enterprise-grade reliability.4. Collaboration & LeadershipPartner with LillyUSA Product Owners, Business SMEs, and Cloud Architects — spanning Sales, Marketing, Market Access, and Commercial Operations — to design domain-aligned, reusable data products.Mentor and guide engineers on data engineering and cloud platform best practices.Serve as a technical thought leader for LillyUSA Commercial Technology, influencing data architecture standards and the AI-enablement roadmap across LUSA sales, marketing, and customer engagement platforms.Required Skills & QualificationsBachelor’s or Master’s degree in Computer Science, Engineering, or related discipline.15+ years in Data Engineering / Architecture roles with 6+ years of hands-on AWS & Databricks experience.Strong proficiency in PySpark, SQL, Delta Lake, and Unity Catalog.Proven experience in designing and managing data solutions on AWS (e.g., S3, Redshift, Glue, Data Factory, Synapse).Deep understanding of data modelling, ETL orchestration, and performance tuning.Familiarity with ML Ops, Feature Stores, and AI/ML lifecycle automation.Experience with unstructured data, RAG, Databricks Genie, vector databases, and GenAI pipelines for creating agents.Prior experience in pharma, life sciences, or regulated data environments; familiarity with US commercial pharma data sources (IQVIA, Symphony, Veeva, APLD) is a strong differentiator.Mandatory Certifications needed:Databricks Certified Data Engineer / Architect (Associate or Professional).AWS Solution Architect Associate or ProfessionalLilly is dedicated to helping individuals with disabilities to actively engage in the workforce, ensuring equal opportunities when vying for positions. If you require accommodation to submit a resume for a position at Lilly, please complete the accommodation request form (https://careers.lilly.com/us/en/workplace-accommodation) for further assistance. Please note this is for individuals to request an accommodation as part of the application process and any other correspondence will not receive a response.Lilly does not discriminate on the basis of age, race, color, religion, gender, sexual orientation, gender identity, gender expression, national origin, protected veteran status, disability or any other legally protected status.#WeAreLilly

Locations

  • Bengaluru, India

Skills Required

  • PySparkintermediate
  • designingintermediate
  • ML Opsintermediate
  • unstructured dataintermediate
  • pharmaintermediate
  • US commercial pharma data sourcesintermediate

Required Qualifications

  • Bachelor’s or Master’s degree in Computer Science, Engineering, or related discipline. (degree in master)
  • 15+ years in Data Engineering / Architecture roles with 6+ years of hands-on AWS & Databricks experience. (experience, 15 years)
  • Strong proficiency in PySpark, SQL, Delta Lake, and Unity Catalog. (experience)
  • Proven experience in designing and managing data solutions on AWS (e.g., S3, Redshift, Glue, Data Factory, Synapse). (experience)
  • Deep understanding of data modelling, ETL orchestration, and performance tuning. (experience)
  • Familiarity with ML Ops, Feature Stores, and AI/ML lifecycle automation. (experience)
  • Experience with unstructured data, RAG, Databricks Genie, vector databases, and GenAI pipelines for creating agents. (experience)
  • Prior experience in pharma, life sciences, or regulated data environments; familiarity with US commercial pharma data sources (IQVIA, Symphony, Veeva, APLD) is a strong differentiator. (experience)

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