Data Engineer I
The University of Texas at Austin
- Austin, Texas, United States
- Austin, Texas, United States
À propos
Responsibilities Designs and Maintains Data Pipelines
Creates and maintains optimal data pipeline architecture for structured and unstructured healthcare data.
Assembles large, complex data sets that meet functional and non‑functional business requirements.
Builds scalable ETL/ELT pipelines using SQL and AWS big data technologies.
Optimizes pipeline performance for latency, throughput, and fault tolerance.
Ensures pipelines comply with HIPAA and other regulatory standards.
Develops and Manages Data Infrastructure
Builds infrastructure for optimal extraction, transformation, and loading of data from diverse sources.
Creates and maintains data lakes, warehouses, and marts using platforms like Snowflake, Redshift, or BigQuery.
Configures cloud‑based storage and compute environments (AWS, Azure, GCP).
Implements schema design, indexing, and partitioning strategies.
Ensures high availability and disaster recovery protocols.
Enables Analytics and Data Science
Creates data tools for analytics and data science teams to build and optimize data products.
Develops reusable components for reporting and dashboarding tools.
Builds data models and views for use by analysts and data scientists.
Enables self‑service analytics through curated datasets.
Collaborates with stakeholders to define KPIs and metrics.
Improves Internal Processes and Scalability
Identifies, designs, and implements internal process improvements.
Automates manual processes and optimizes data delivery.
Re‑designs infrastructure for greater scalability and performance.
Refactors legacy systems for maintainability.
Implements CI/CD pipelines for data workflows.
Collaborates Across Teams
Works with stakeholders including Executive, Product, Data, and Design teams to support data infrastructure needs.
Translates business requirements into technical specifications.
Provides mentorship to junior data engineers.
Communicates technical concepts to non‑technical stakeholders.
Supports cross‑functional initiatives and agile squads.
Ensures Data Governance and Security
Keeps data separate and secure, following all relevant data governance and security protocols.
Implements data validation, anomaly detection, and cleansing routines.
Collaborates with data governance teams to enforce policies.
Audits data for completeness, accuracy, and timeliness.
Supports data stewardship and master data management initiatives.
MARGINAL OR PERIODIC FUNCTIONS
Conducts training sessions for analysts and clinical staff on data tools.
Participates in vendor evaluations and proof‑of‑concept projects.
Supports data integration for mergers, acquisitions, or new service lines.
Assists in disaster recovery drills and business continuity planning.
Contributes to grant proposals or research initiatives requiring data support.
Performs related duties as required.
Knowledge / Skills / Abilities Technical Learning
Quickly learns new technical skills and knowledge; is good at learning new industry, company, product, or technical knowledge.
Adopts new data tools and frameworks with minimal supervision.
Learns and applies healthcare‑specific data standards (e.g., HL7, FHIR).
Keeps current with cloud platform updates and best practices.
Problem Solving
Uses rigorous logic and methods to solve difficult problems with effective solutions.
Diagnoses root causes of data pipeline failures.
Designs scalable solutions for complex data integration challenges.
Applies statistical methods to validate data quality.
Functional / Technical Skills
Possesses the functional and technical knowledge and skills to do the job at a high level of accomplishment.
Writes efficient SQL and Python code for data processing.
Configures cloud infrastructure for data workloads.
Implements secure and compliant data architectures.
Dealing with Ambiguity
Copes with change effectively; can shift gears comfortably; can decide and act without having the total picture.
Designs flexible data models for evolving clinical needs.
Navigates incomplete or inconsistent data sources.
Adapts to shifting priorities in fast‑paced environments.
Collaborates
Works effectively with others to achieve shared goals; actively listens and communicates openly.
Partners with clinicians to understand data needs.
Participates in cross‑functional agile teams.
Resolves conflicts between technical and business priorities.
Strategic Agility
Sees ahead clearly; can anticipate future consequences and trends accurately.
Designs data systems that scale with organizational growth.
Aligns data engineering efforts with enterprise analytics strategy.
Anticipates regulatory changes and prepares infrastructure accordingly.
Required Qualifications
Bachelor’s Degree in Computer Science, Information Systems, Engineering, Statistics, or a related field with at least 2 years of experience in data engineering, architecture, or ETL development.
Proficiency with big data tools (e.g., Hadoop, Spark, Kafka).
Experience with both SQL and NoSQL databases.
Skilled in data pipeline and workflow management tools.
Familiarity with AWS services, such as EC2, EMR, RDS, Redshift, Glue, DynamoDB.
Programming/scripting experience in Python, Java, C++, Scala, or similar.
Relevant education and experience may be substituted as appropriate.
Preferred Qualifications
Master’s Degree in Data Engineering, Computer Science, or related field with at least 5 years of experience in healthcare data engineering or analytics.
Advanced SQL skills and hands‑on relational database work.
Expertise in building and optimizing big data pipelines using Python.
Experience managing data transformation, metadata, dependencies, and workload orchestration.
Understanding of message queuing, stream processing, and scalable data storage systems.
Strong project management skills.
LICENSES, REGISTRATIONS OR CERTIFICATIONS Required
None
Preferred
AWS Certified Data Analytics
Certified Health Data Analyst (CHDA)
Project Management Professional (PMP)
Salary Range $71,059.66 + depending on qualifications
Working Conditions
Standard office equipment
Repetitive use of a keyboard
May be exposed to such occupational hazards as communicable diseases, blood borne pathogens, ionizing and non‑ionizing radiation, hazardous medications and disoriented or combative patients, or others.
Retirement Plan Eligibility The retirement plan for this position is Teacher Retirement System of Texas (TRS), subject to the position being at least 20 hours per week and at least 135 days in length.
Equal Opportunity Employer The University of Texas at Austin, as an equal opportunity/affirmative action employer, complies with all applicable federal and state laws regarding nondiscrimination and affirmative action. The University is committed to a policy of equal opportunity for all persons and does not discriminate on the basis of race, color, national origin, age, marital status, sex, sexual orientation, gender identity, gender expression, disability, religion, or veteran status in employment, educational programs and activities, and admissions.
Pay Transparency The University of Texas at Austin will not discharge or in any other manner discriminate against employees or applicants because they have inquired about, discussed, or disclosed their own pay or the pay of another employee or applicant. However, employees who have access to the compensation information of other employees or applicants as a part of their essential job functions cannot disclose the pay of other employees or applicants to individuals who do not otherwise have access to compensation information, unless the disclosure is (a) in response to a formal complaint or charge, (b) in furtherance of an investigation, proceeding, hearing, or action, including an investigation conducted by the employer, or (c) consistent with the contractor’s legal duty to furnish information.
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Compétences linguistiques
- English
Avis aux utilisateurs
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