Data Engineer Role

Open Data Watch, Inc.
Washington, DC, United States
29 days ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Working hours
Regular working hours
Job source

Tech stack

Application Programming Interfaces (APIs) Artificial Intelligence Cloud Computing Computer Programming Databases Information Engineering Data Security Query Languages Distributed Data Store Document Retrieval Python (Programming Language) Machine Learning
+11 more
Enterprise Messaging Systems Metadata SQL Databases Data Streaming Management of Software Versions Data Ingestion Generative AI Data Lakes Operational Systems Data Management Devsecops

Job description

Data Engineers build and operate the systems that move data from its sources to the people, applications, analyses, and models that depend on it. They ingest data, transform it, organize it for use, and keep it accurate, secure, traceable, and available at scale. Their work turns fragmented files, documents, databases, application programming interfaces (APIs), and event streams into reliable data products.

Artificial intelligence (AI) is one important consumer of that work, alongside reporting, visualization, analytics, software, and operational systems. Some openings may involve preparing dependable data for machine learning, document retrieval, or AI evaluation. The center of the Role remains dependable data engineering from source to use. What you may build

  • Ingestion and transformation pipelines for batch, streaming, and event-driven data from APIs, databases, files, documents, object stores, messaging systems, and operational platforms.
  • Cloud and on-premises data platforms, including databases, data lakes, warehouses, lakehouses, and serving layers for reporting, visualization, software, analytics, and other operational uses.
  • Quality, validation, metadata, lineage, provenance, and access-control capabilities that make data trustworthy, explain how it changed, and keep its use within approved boundaries.
  • The operational layer around data products: orchestration, testing, monitoring, backfills, replay, recovery, retention and deletion implementation, performance and cost tuning, infrastructure as code, and technical documentation.
  • Where the work requires it, versioned feature, training, testing, or evaluation datasets; document and retrieval-index pipelines; or governed telemetry and feedback data that support machine learning and generative AI systems.

Who you are

You care whether data arrives, but also whether it is complete, timely, understood, authorized, and fit for use. You trace failures across sources, transformations, storage, and serving layers, and you improve recurring processes instead of working around them.

You collaborate well with source-system owners, software engineers, analysts, data scientists, AI Engineers, Machine Learning Engineers, security and governance specialists, and Development, Security, and Operations (DevSecOps) Engineers. You make data contracts and tradeoffs clear, distinguish a data problem from a model or application problem, and prefer ownership of an outcome to a narrowly assigned task. What you bring

Requirements

  • A working foundation in programming and query languages used for data engineering. Python and Structured Query Language (SQL) are common, but the specific stack varies by opening.
  • Experience or strong grounding in data ingestion, transformation, storage, schema and data-model design, and the performance characteristics of distributed data systems.
  • An understanding of batch, streaming, and event-driven processing, together with orchestration, testing, deployment, monitoring, recovery, and documentation.
  • Practical experience with data quality, metadata, lineage, provenance, versioning, access controls, and secure data handling.
  • The judgment to work in environments where accuracy, privacy, security, traceability, reproducibility, resilience, performance, and cost matter.

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Good distractions

Talks and stories from around this role — technically off-topic, practically not.

1:19 min

The true role and evolution of data engineering

Sandhya Menon Sandhya Menon · World Congress 2026 Europe

1:47 min

Comparing Egeria to alternative open metadata solutions

Ferd Scheepers · World Congress 2022

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Key lessons learned from implementing automated mobile DevSecOps

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Database evolution and the funding behind vector databases

Erik Bamberg · LIVE

2:57 min

Core technical practices for robust data engineering

Sandhya Menon Sandhya Menon · World Congress 2026 Europe

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Creating standard APIs via the Egeria open metadata project

Ferd Scheepers · World Congress 2022

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