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Senior Data Engineer

The Lead Data Engineer will design, build, and operationalize scalable data solutions to support enterprise analytics and AI/ML initiatives. This role requires expert-level proficiency in Databricks, Azure Fabric, PySpark, SQL, and the Azure ecosystem, with deep experience across data warehouses, data lakes, and real-time integration. The Lead Data Engineer will architect end-to-end pipelines using industry-standard tools, drive automation, and move solutions effectively into production. The incumbent will ensure compliance with data governance requirements (including GxP and HIPAA/GDPR) while building reusable, integrated pipelines and analytical models that promote self-service analytics. This role provides technical leadership across the team, mentors junior engineers, and partners with business stakeholders to align data engineering with organizational objectives.

About the Role

  • Architect, design, and implement end-to-end data solutions using Azure Databricks, PySpark, Azure Data Factory, and Azure SQL.
  • Design, build, and maintain data pipelines from data sources through integration to consumption for specific use cases.
  • Implement robust data modeling standards across bronze, silver, and gold layers in the data lake.
  • Develop data models (conceptual, logical, and/or physical) as required.
  • Optimize Spark and SQL workloads for performance, scalability, and cost efficiency.
  • Manage metadata using data preparation, integration, and AI-enabled tools and techniques.

About You

Job Experience & Education Requirements:

Bachelor’s degree in Computer Science, Information Systems, Engineering, or related field (Master’s preferred)

5–8 years of experience designing and developing enterprise-scale data solutions (data warehouses, data lakes, operational databases)

  • Expert-level proficiency in Databricks, Azure Fabric, PySpark, SQL, and Azure DevOps.
  • Proven experience with Azure Data Factory, ADLS Gen2, and Azure SQL Server.
  • Strong experience with Microsoft Azure data management architectures including Data Warehouse, Data Lake, and Data Catalogue, and supporting processes such as Data Integration, Governance, and Metadata Management.
  • Experience with Power BI required; Tableau or Looker a plus.
  • Working knowledge of CI/CD automation, version control (Git), and infrastructure as code (ARM, Bicep, or Terraform).
  • Experience in life sciences or healthcare industries is a strong plus.
  • Good understanding of GxP, GDPR/HIPAA, and applicable CFR/CTR/CTD regulations.
  • Demonstrated success working with both IT and business stakeholders while integrating analytics and data science output into business processes and workflows.
  • Must have excellent written and verbal communication skills.
  • Proven ability to work independently and as part of a team and meet important deadlines.
  • Statistical analysis skills are an asset.

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