Data Quality Engineer
University of ChicagoAbout the role
Department
BSD CTD - User Services - GDC
About the Department
Job Summary
The job performs a variety of activities relating to software support and/or development. Provides analysis, design, development, debugging, and modification of computer code for end user applications, beta general releases, web pages, and production support. Troubleshoots problems using existing procedures to find a possible solution.
This at-will position is wholly or partially funded by contractual grant funding which is renewed under provisions set by the grantor of the contract. Employment will be contingent upon the continued receipt of these grant funds and satisfactory job performance.
Responsibilities
Drive the design of the data QA infrastructure and execution of testing protocols to validate pipelines, integrated datasets, and data products.
Use a combination of exploratory, regression, and automated testing to ensure data quality standards. Assess appropriate inclusion/exclusion of data based on defined data dictionary.
Assist in evaluation and development of data dictionaries and utilize data specification and code to validate data as it relates to quality.
Assist in data release planning and implementation based on stakeholder requirements and data availability.
Proactively identify potential data issues and downstream impact. Identify existing data issues and perform research and root cause analyses to determine resolution. Work collaboratively with software engineers, bioinformaticians, and stakeholders to achieve and verify resolution.
Establish and maintain processes and standards to improve data quality assurance and implement efficiencies in data management.
Define measurements and metrics to conduct and present routine data reports to the project team and stakeholders.
Participate in data acquisition and integration planning efforts including data modeling, data dictionary definitions, and data harmonization pipeline development.
Develop a deep understanding of multiple genomic datasets and the technical data management software and processes of the underlying system.
Define data quality and integrity criteria and develop a comprehensive data quality management plan to lead key data QC efforts through team collaboration for all phases of the data management life cycle.
Contribute written knowledge and expertise to system documentation, user documentation, scientific manuscripts, reporting, grant proposals and reports, and presentation materials. Stay abreast of broad knowledge of
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