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Data Engineer; DEA)

Job in Arlington, Arlington County, Virginia, 22201, USA
Listing for: Hatch IT
Full Time position
Listed on 2026-08-30
Job specializations:
  • IT/Tech
    Data Engineering
Salary/Wage Range or Industry Benchmark: 110000 - 150000 USD Yearly USD 110000.00 150000.00 YEAR
Job Description & How to Apply Below
Position: Data Engineer (DEA)

hatch I.T. is partnering with Expression to find a
Data Engineer
. See details below:

About The Role:

Expression is seeking a
Data Engineer to support the Drug Enforcement Administration (DEA) Investigative Case and Data Ecosystem (ICDE) modernization effort. This program is focused on modernizing DEA's case management capabilities and creating a centralized, secure, scalable ecosystem supporting law enforcement, investigative, forensic, and intelligence missions.

The Data Engineer will design, develop, and maintain scalable data pipelines supporting the ingestion, transformation, migration, validation, and integration of structured and unstructured data. This position will contribute to the modernization and migration of DEA legacy data while helping ensure data is accurate, consistent, secure, and prepared to support analytics and emerging AI/ML capabilities.

Location and Clearance:
  • Clearance: Top Secret (SCI) required.
  • Location: Arlington, VA. The program is primarily onsite at DEA Headquarters.
About the Company:

Founded in 1997 and headquartered in Washington DC, Expression provides data fusion, data analytics, software engineering, information technology, and electromagnetic spectrum management solutions to the U.S. Department of Defense, Department of State, and national security community. Expression's "Perpetual Innovation" culture focuses on creating immediate and sustainable value for their clients via agile delivery of tailored solutions built through constant engagement with their clients.

Expression was ranked #1 on the Washington Technology 2018's Fast 50 list of fastest growing small business Government contractors and a Top 20 Big Data Solutions Provider by CIO Review.

Responsibilities:
  • Design, develop, and maintain scalable ETL pipelines for ingesting, transforming, and loading structured and unstructured datasets.
  • Support large-scale migration of legacy data into the modernized DEA investigative and case management ecosystem.
  • Analyze complex data structures and source-to-target mappings to identify opportunities for workflow optimization and automation.
  • Implement data cleaning, standardization, validation, classification, and transformation processes to improve data quality and consistency.
  • Monitor and ensure data accuracy, completeness, consistency, and integrity across systems and platforms.
  • Implement data migration strategies supporting application modernization and transitions across platforms and cloud environments.
  • Develop and execute data validation processes and checkpoints throughout data migration activities.
  • Collaborate with analysts, data scientists, developers, and business partners to translate requirements into effective data engineering solutions.
  • Support data interoperability and exchange across integrated systems.
  • Monitor pipeline performance, troubleshoot operational issues, and improve reliability, scalability, and efficiency.
  • Support data preparation and tagging activities needed for analytics and AI/ML use cases.
  • Participate in Agile development activities, including sprint planning, stand-ups, reviews, and retrospectives.
  • Document data flows, source-to-target mappings, transformation logic, validation processes, and operational procedures.
Qualifications:
  • Bachelor's degree on STEM fields and 2+ years of professional experience.
  • Hands-on experience with data analysis, ETL development, and data migration.
  • Proficiency in SQL, including complex queries, data transformations, and performance tuning.
  • Familiarity with Python for data manipulation, scripting, and workflow automation.
  • Experience with ETL frameworks or orchestration tools such as Apache Airflow, Talend, dbt, or similar technologies.
  • Understanding of data warehousing principles, including dimensional modeling and staging architectures.
  • Exposure to cloud-based data platforms such as AWS Redshift, Google Big Query, Azure SQL, or similar environments.
  • Ability to perform data profiling, validation, troubleshooting, and root-cause analysis.
  • Ability to clearly document technical processes, data mappings, and transformation logic.
  • Ability to collaborate effectively with engineers, analysts, developers, and business stakeholders.
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