Data Engineer, Principal (Hybrid)

Releady

San Francisco (CA)

Hybrid

USD 242,457,600 - 272,764,800

Full time

14 days+

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Job summary

Releady is seeking a Principal Data Engineer to design and deliver scalable data platforms across enterprise data lakes, warehouses, and data marts. You will lead data pipeline initiatives, mentor engineers, and collaborate with architecture and product teams to enable AI-ready analytics.

You will deploy on cloud platforms such as Snowflake, Databricks, and Synapse, emphasizing quality, governance, and cost efficiency while advancing enterprise data solutions for healthcare contexts.

Qualifications

  • Bachelor's degree or equivalent experience.
  • Experience supporting enterprise AI/ML, advanced analytics, and data product ecosystems.
  • Data Vault 2.0, dimensional modeling, Lakehouse architecture, or domain-driven data design.
  • Ability to influence enterprise architecture decisions and mentor senior engineering talent.
  • Deep understanding of data management practices including data modeling, master data management, data integration, warehousing, privacy, and security.
  • Experience applying AI-driven solutions in enterprise environments.
  • Hands-on with SQL, Python, DBT Cloud, and DBT Core; fluency in NoSQL and Snowflake, Synapse, or Databricks.
  • Design and scale large-volume, high-performance data platforms with parallel architectures.
  • Knowledge of CI/CD, source control, and agile tooling like Git, Bitbucket, Jira.
  • Experience in healthcare, regulated environments, or large enterprises is preferred.

Responsibilities

  • Lead the design, development, and deployment of scalable data pipelines for data lakes, warehouses, and marts.
  • Engineer robust ELT/ETL solutions ingesting diverse data sources.
  • Apply Data Vault 2.0, dimensional models, and domain-driven design to analytics data products.
  • Collaborate with design, architecture, and product teams to ensure secure, efficient designs.
  • Build data solutions on Snowflake, Databricks, and Synapse with performance and cost efficiency.
  • Embed data quality, validation, observability, lineage, and governance into pipelines.
  • Champion DevOps and DataOps practices including CI/CD, testing, IaC, monitoring, and alerts.
  • Provide hands-on leadership and mentor engineers; promote engineering standards and best practices.
  • Support AI/ML-ready data assets and ensure trustworthy data for analytics use cases.

Skills

Data Vault 2.0
Dimensional modeling
Lakehouse architecture
Data integration
SQL
Python
DBT Cloud
DBT Core
NoSQL
Snowflake
Databricks
Synapse
CI/CD
Git
Jira
Bitbucket
Healthcare industry
AI/ML readiness

Education

Bachelor's degree or equivalent experience

Tools

Snowflake
Databricks
Synapse

Job description

OVERVIEW

Releady is partnering with a leading healthcare technology company to hire a Data Engineer, Principal for its Data Services team. This organization provides the technology backbone and shared data infrastructure for nonprofit, community, and regional health plans nationwide, unifying clinical, claims, demographic, and provider data into a single governed platform that powers automation and AI deployment across core health plan operations.

This role reports to a Senior Manager, Data Solutions, or Director, and partners with Enterprise Architects, Portfolio, Analytics, and Data Engineering teams to design technical solutions and build data products that meet enterprise-wide data needs. The Principal drives data product delivery by designing and implementing cloud data lakes, data warehouse, and data mart solutions, and is expected to influence enterprise architecture decisions and mentor senior engineering talent.

NOTE: Must be eligible to work on W2 without sponsorship. Not eligible for C2C.

Employment Type: Contract-to-Hire (six-month contract term)

Location: Hybrid — 2x/week onsite; San Diego, Long Beach, Sacramento, Rancho Cordova, or Oakland (SF Bay Area)

Compensation: $85 – $95/hr

RESPONSIBILITIES
Data Platform Architecture & Delivery
  • Lead the design, development, and implementation of scalable data pipelines supporting enterprise data lakes, data warehouses, and data marts.
  • Engineer robust ELT/ETL solutions that ingest, process, and curate structured and semi-structured data from diverse internal and external sources.
  • Apply advanced data modeling techniques, including Data Vault 2.0, dimensional, and domain-oriented models, to support analytics and data products.
Cross-Functional Solution Design
  • Partner with Solution Design, Architecture, and Product teams to ensure technical designs are implemented accurately, efficiently, and securely.
  • Build and optimize data solutions on cloud platforms such as Snowflake, Databricks, and Synapse, with a focus on performance, scalability, reliability, and cost efficiency.
Quality, Governance & Operations
  • Implement data quality, validation, observability, lineage, and governance controls embedded directly into data pipelines.
  • Champion and apply DevOps and DataOps best practices, including CI/CD, automated testing, infrastructure as code, monitoring, and alerting.
  • Identify performance bottlenecks, reliability risks, and optimization opportunities across data platforms and workflows.
Technical Leadership & AI Enablement
  • Provide hands‑on technical leadership and mentorship to senior and mid‑level data engineers, promoting engineering standards and best practices.
  • Collaborate using agile methodologies to plan work, refine technical stories, and deliver iteratively with predictable outcomes.
  • Support integration of AI/ML‑ready data assets, ensuring data is trustworthy, well‑modeled, and accessible for advanced analytics use cases.
  • Act as a technical thought leader, advocating for modern data engineering patterns, tools, and practices aligned to enterprise strategy.
QUALIFICATIONS
  • Bachelor's degree or equivalent experience, with a minimum of ten years of relevant data engineering experience.
  • Experience supporting enterprise AI/ML, advanced analytics, and data product ecosystems.
  • Expertise in Data Vault 2.0, dimensional modeling, Lakehouse architecture, or domain‑driven data design.
  • Demonstrated ability to influence enterprise architecture decisions and mentor senior engineering talent.
  • Expert‑level understanding of data management practices, including data modeling (Data Vault 2.0), master data management, data integration, architecture, virtualization, warehousing, privacy, and security.
  • Demonstrated enthusiasm for AI and emerging technologies, with hands‑on experience applying AI‑driven solutions in enterprise environments.
  • Hands‑on experience with SQL, Python, DBT Cloud, and DBT Core; expert‑level fluency in NoSQL and database platforms such as Snowflake, Synapse, or Databricks.
  • Proven ability to design and scale large‑volume, high‑performance data platforms leveraging parallel and distributed architectures.
  • Advanced knowledge of CI/CD, source control, and agile delivery tooling such as Git, Bitbucket, and Jira.
  • Experience in healthcare, regulated environments, or large enterprises is strongly preferred.

We are an equal opportunity employer and value diversity at our company. We do not discriminate on the basis of race, religion, color, national origin, gender, sexual orientation, age, marital status, veteran status, disability status, or other non‑merit factor. We are committed to creating a diverse and inclusive environment for all employees.

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