Principal Data Platform Engineer (Healthcare)

Sphere Partners

  • 1 day ago
  • Remote
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    Skills

    • Amazon Web Services (AWS)unmatched
    • Architectural Analysisunmatched
    • Best Practicesunmatched
    • Biologyunmatched
    • Business Developmentunmatched
    • Cloud Computingunmatched
    • Code Reviewsunmatched
    • Continuous Deployment/Deliveryunmatched
    • Continuous Integrationunmatched
    • Cross-Functionalunmatched
    • Customer Relationsunmatched
    • Data Analysisunmatched
    • Data Managementunmatched
    • Data Modelingunmatched
    • Data Processingunmatched
    • Database Extract Transform and Load (ETL)unmatched
    • DevOpsunmatched
    • Ecosystemsunmatched
    • Engineeringunmatched
    • Epic Systemsunmatched
    • Establish Prioritiesunmatched
    • GCP (Good Clinical Practices)unmatched
    • HL7 (Health Level 7)unmatched
    • Healthcareunmatched
    • Leadershipunmatched
    • Mentoringunmatched
    • Microsoft Product Familyunmatched
    • Microsoft Windows Azureunmatched
    • Python Programming/Scripting Languageunmatched
    • Requirements Managementunmatched
    • Risk Analysisunmatched
    • SQL (Structured Query Language)unmatched
    • Technical Deliveryunmatched
    • Technical Leadershipunmatched
    • Testingunmatched
    • Thought Leadershipunmatched
    • Time Managementunmatched
    • Use Casesunmatched

    Description

    We are currently looking for a Principal Data Platform Engineer (Databricks) to join a modern data platform initiative for healthcare and life sciences clients. This role will focus on owning end-to-end architecture and delivery of scalable data solutions, working closely with data architects, analysts, and client stakeholders.

    Location: Remote, United States

    Key Responsibilities:

    • Own end-to-end architecture and delivery of scalable data solutions, with strong emphasis on Databricks-based (or comparable Snowflake / Microsoft Fabric) platforms and modern cloud ecosystems
    • Lead the design and implementation of data pipelines, data models, and transformation frameworks supporting analytics, reporting, and advanced use cases
    • Serve as the primary client-facing technical lead, building trusted relationships and guiding stakeholders through complex data decisions
    • Translate ambiguous business requirements into clear technical architectures and delivery plans
    • Establish and enforce best practices across data engineering — ingestion, pipeline orchestration, testing, optimization — and DevOps/CI-CD
    • Drive platform strategy and architecture decisions, including lakehouse design, medallion architecture, and governance frameworks
    • Lead and mentor delivery teams, providing technical guidance, code reviews, and hands-on support
    • Collaborate with cross-functional teams — data architects, analysts, client stakeholders — to ensure alignment and value delivery
    • Identify risks and proactively address challenges to ensure high-quality, on-time delivery
    • Contribute to internal capability building: reusable frameworks, accelerators, and thought leadership
    • Support business development by shaping technical solutions and contributing to proposals and client discussions

    Requirements:

    • 7+ years of data engineering experience, with clear progression into technical leadership and architecture ownership
    • Deep expertise in Databricks and modern lakehouse architectures, including Delta Lake and Spark-based processing (comparable Snowflake or Microsoft Fabric experience also considered)
    • Advanced SQL and Python skills, with strong experience building and optimizing large-scale data pipelines
    • Hands-on experience with cloud platforms (AWS, Azure, or GCP), including data services and infrastructure design
    • Solid understanding of data modeling concepts, ETL/ELT patterns, and distributed data processing
    • Experience with data ingestion pipelines, orchestration tools (e.g., Airflow), and transformation frameworks (e.g., dbt)
    • Hands-on experience with CI/CD and DevOps practices in a data engineering context
    • Proven ability to lead technical delivery while staying hands-on
    • Strong client-facing experience: requirements gathering, solution design, executive communication
    • Ability to navigate ambiguity, prioritize effectively, and drive clarity in complex environments

    Nice to Have:

    • Healthcare data experience (e.g., Epic, HL7, FHIR, claims data)
    • Experience with infrastructure-as-code tools (e.g., Terraform)

    Numbers & Facts

    Location (
    Remote
    )

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