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Data Systems Analyst 3 (Flex-Hybrid)

University of California - Los Angeles Health
United States, California, Los Angeles
Jul 25, 2025
Description
As a Data Engineer on the Data Architecture team, you will play a key role in technology initiatives to advance health informatics and analytics in the health sciences by advancing the usability, performance, and overall architecture of the Data Infrastructure. You will develop reliable, and large-scale data processing pipelines, Foundational architectural components, reusable frameworks, and Data Models to support Enterprise Data warehouse, Data Lakes, Feature Stores and Machine Learning Platform.
Involves technical acumen for planning, designing, developing, implementing, and administering data-based systems that acquire, prepare, store, and provide access to data and metadata. Maintains and optimizes systems and migrates data and systems as needed. Ensures integrity and completeness of data and workflow, manages and / or develops data practices, databases, and information systems as well as guidelines, dictionaries, registries and / or services. May include interpretation of scientific research data artifacts as well as mediation across science and technology domains and long-term data care. As information architect and data steward, designs systems, data products and / or data production processes while focusing on data curation, data exchange, data security, data integrity and information environments. (Re)evaluates frameworks, strategies, standards, and standards-making activities. May involve work with a project-level data repository, a center, or an archive.
You will be part of the team building UCLA Health's Data Platform and products and is a unique opportunity to be part of advancing analytics for one of the nation's leading Healthcare organizations where Big Data will be used as a platform to build solutions.
Qualifications

  • Minimum one year of software
    development experience.
  • 1+ years' experience on the data or
    backend systems side of the software development.
  • Strong industry experience in
    programming languages such as Python with the ability to pick up new
    languages and technologies quickly.
  • Strong experience with Relational databases
    like SQL Server or Oracle is required.
  • Strong background in Data
    warehousing and ETL principles, architecture, and its implementation in
    large environments.
  • Experience working with Machine
    Learning Systems like Databricks, Feature Stores, MLOps is strongly preferred.
  • Working knowledge on leading cloud
    platforms like Azure, AWS, GCP; Microsoft Azure experience is preferred.

Bachelor's degree in computer science, Computer
Engineering, or related field from an accredited college or university; Master's
Degree preferred.
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