Senior Data Engineer
Listed on 2026-07-27
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IT/Tech
Data Engineering, Data Warehousing
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Onsite or Remote
Flexible Hybrid
Work Schedule
Posted Date
07/23/2026
Salary Range
: $109900 - 243900 Annually
Employment Type
Duration
Indefinite
Job #
31678
Primary Duties and ResponsibilitiesPress space or enter keys to toggle section visibility
UCLA Health is seeking a Senior Data Engineer to join our Data Architecture team and help build the next generation of enterprise data platforms that power analytics, machine learning, artificial intelligence, and data-driven decision-making across one of the nation's leading academic health systems.
In this highly visible role, you will design and develop scalable data solutions that enable enterprise reporting, advanced analytics, machine learning, generative AI, and operational intelligence. You'll work at the forefront of cloud and data modernization initiatives, building robust data pipelines, reusable engineering frameworks, curated data products, and foundational platform capabilities that support critical healthcare operations and innovation.
This opportunity is ideal for an experienced engineer who enjoys solving complex data challenges, designing scalable architectures, and delivering high-quality data products that create meaningful impact for patients, providers, researchers, and business leaders.
What You'll DoAs a Senior Data Engineer, you will:
- Design, develop, and maintain scalable data pipelines that ingest, transform, validate, and deliver data from complex enterprise applications and external data sources.
- Build foundational data infrastructure that supports enterprise reporting, analytics, machine learning, data science, feature engineering, and AI-driven solutions.
- Develop trusted, well-governed data products, curated datasets, and reusable data models that are reliable, scalable, and easy to consume.
- Engineer solutions across diverse healthcare domains, including clinical, operational, financial, research, and administrative data.
- Implement modern data engineering best practices, including modular design, automated testing, CI/CD, monitoring, orchestration, observability, and production support.
- Create and maintain technical architecture documentation, data dictionaries, lineage artifacts, runbooks, and data quality frameworks.
- Collaborate with data architects, analysts, data scientists, application teams, product managers, and business stakeholders to deliver scalable data solutions aligned with organizational priorities.
- Support enterprise cloud modernization initiatives involving Azure-based data services, Databricks, data lakehouse architectures, enterprise data warehousing, ML-ready datasets, and feature stores.
- Optimize the performance, reliability, scalability, and usability of enterprise data pipelines and analytical assets.
- Establish and promote standards for data modeling, metadata management, naming conventions, security, governance, data quality, and reusable engineering frameworks.
- Lead or contribute to strategic initiatives by defining technical architectures, implementation patterns, delivery approaches, and operational support models.
- Participate in cross-functional architecture reviews, solution design discussions, and technology planning efforts.
- Mentor team members through code reviews, technical guidance, documentation, workshops, and knowledge-sharing sessions.
- Partner with leadership to advance engineering standards, platform capabilities, and the long-term data architecture roadmap.
At UCLA Health, you'll have the opportunity to work with modern cloud technologies, advanced analytics platforms, and emerging AI capabilities while helping improve healthcare outcomes for millions of patients. You'll collaborate with passionate professionals across technology, research, and clinical domains to build innovative solutions that support one of the most respected healthcare organizations in the country.
Join us and help shape the future of healthcare data, analytics, and AI.
Salary range: $109,900 - $243,900
Salary offers are based on a variety of factors including qualifications, experience, and internal equity . The University anticipates offering a salary below the midpoint of this range.
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- 5+ years of experience in data engineering, software engineering, backend engineering, analytics engineering, or related technical roles.
- Strong programming experience with Python, including the ability to write clean, modular, maintainable, and production-quality code.
- Strong SQL skills and hands-on experience working with relational databases such as SQL Server, Oracle, PostgreSQL, or similar platforms.
- Solid understanding of data warehousing, ETL/ELT design patterns, dimensional modeling, data lake/lakehouse concepts, and large-scale data processing.
- Experience designing and building data pipelines that ingest, transform, validate, and publish data from multiple source systems.
- Experience working with modern data platforms such as…
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