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Senior Data Engineer

Job Description - Senior Data Engineer


We are seeking a hands-on Technical Lead to lead the development and operation of its Microsoft Fabric-based Platform. This role combines data platform architecture, hands-on engineering, technical leadership, and business partnership.

Key Responsibilities



  • Lead the architecture and engineering of the Microsoft Fabric data lake-house, including OneLake, medallion architecture, Spark/SQL, and CI/CD.

  • Provide hands-on technical leadership, mentoring, code reviews, and architectural guidance to data and analytics engineers.

  • Design and build scalable data pipelines integrating 50+ enterprise source systems.

  • Partner with business stakeholders across R&D, Commercial, Manufacturing, Supply Chain, and Corporate functions to translate business needs into data solutions.

  • Manage and technically oversee external implementation partners, ensuring engineering quality and adherence to standards.

  • Establish platform support models, SLAs, monitoring, data quality, incident management, and operational processes.

  • Define and track platform KPIs such as pipeline reliability, data freshness, query performance, onboarding velocity, and incident resolution.

  • Develop the semantic layer, including Power BI datasets, gold-layer views, and self-service analytics.

  • Implement data governance, security, classification, RBAC, sensitivity labeling, and audit requirements.

  • Establish engineering standards for development, testing, branching, documentation, and deployment.

Required Qualifications



  • Bachelor’s degree in Computer Science, Data Engineering, Information Systems, or related field.

  • 7–10 years of experience in data engineering, data platforms, or analytics infrastructure.

  • 2+ years of technical leadership experience with data/analytics engineers.

  • Strong hands-on experience with Microsoft Fabric; Databricks or Azure Synapse experience may be considered.

  • Strong proficiency in PySpark, Python, T-SQL, ETL/ELT, and modern data engineering practices.

  • Experience with medallion/layered data architecture at enterprise scale.

  • Experience with DevOps, CI/CD, Azure DevOps/GitHub, and infrastructure-as-code.

  • Knowledge of data governance and quality frameworks such as Microsoft Purview.

  • Experience managing technical delivery from external vendors.

Preferred



  • Biopharma, life sciences, or other regulated-industry experience, including GxP and validation requirements.

  • Experience with Veeva, LIMS, ELN/Benchling, CTMS, EDC, MasterControl, or HRIS integrations.

  • Experience with AI/ML workloads on a lake-house.

  • Microsoft Fabric Data Engineering certification.







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