Full-Time

Data Engineer 2

Updated on 7/25/2026

University of Texas at Austin

University of Texas at Austin

Compensation Overview

$89.9k/yr

Company Does Not Provide H1B Sponsorship

Austin, TX, USA

Hybrid

Hybrid role; occasional on-site required in Austin, TX.

Category
Data & Analytics (1)
Required Skills
Data Lake
Python
NoSQL
SQL
ETL
Data Governance
Requirements
  • Bachelor's Degree in Computer Science, Information Systems, Data Science, or a related field
  • An equivalent combination of education and experience may be considered in lieu of a four-year degree with at least 4 year(s) of experience in data engineering or a closely related field. This experience should include designing data architectures, developing data pipelines, and implementing data quality/performance monitoring.
  • Proven track record in database development using Python and SQL (including experience with NoSQL databases)
Responsibilities
  • Maintains and optimizes data pipeline architecture by designing, building, and managing ETL processes that extract, transform, and load data from diverse sources. Assembles large, complex data sets to meet both functional and non-functional requirements, and develops scalable architectures for structured and unstructured data.
  • Integrates and consolidates data from multiple systems—such as disparate databases and electronic health records—into unified repositories like data warehouses or data lakes. Develops and enhances the underlying data infrastructure using SQL and cloud technologies to ensure scalability and reliability.
  • Creates and supports analytics tools that empower analysts and data scientists to access and analyze data efficiently. Builds custom queries, scripts, and dashboards that enable insight generation and data product optimization. Collaborates with analytics experts to organize, query, and visualize data for reporting and research.
  • Identifies and implements process improvements to enhance data operations. Automates manual workflows, optimize data delivery pipelines, and redesign system architecture to support scalability and performance. Continuously evaluates workflows and technologies to recommend improvements that accommodate growing data complexity.
  • Ensures data governance and security by validating data for accuracy and consistency, and maintaining secure, compliant data environments. Follows best practices and regulatory standards (e.g., HIPAA) to protect sensitive information and uphold data integrity.
  • Collaborates with stakeholders across departments—including executives, product managers, researchers, and designers—to address data infrastructure needs and resolve technical issues. Translates non-technical requirements into effective data solutions and advises on best practices for data architecture.
  • Manages and executes data projects from planning through deployment. Applies light project management techniques to coordinate tasks, communicates with team members, and ensures timely delivery. Exercises independent judgment to overcome obstacles and align project outcomes with organizational goals.
Desired Qualifications
  • Master's Degree in Computer Science, Data Engineering, Informatics, or a related field with at least 7 year(s) of experience in healthcare data engineering or enterprise data systems.
  • Microsoft Certified: Azure Data Engineer Associate
  • Google Cloud Professional Data Engineer
  • AWS Certified Data Analytics – Specialty
  • Analytical Skills: Knowledge of statistics and experience with statistical or data analysis software or Python libraries for data science. This background helps in understanding data trends and supporting data scientists or analysts in the organization with more advanced analytics needs.
University of Texas at Austin

University of Texas at Austin

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