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Data Platform Engineer

Job in Santa Monica, Los Angeles County, California, 90403, USA
Listing for: Hadrian Automation
Full Time position
Listed on 2026-08-10
Job specializations:
  • Software Development
    Data Engineering
Salary/Wage Range or Industry Benchmark: 170000 - 300000 USD Yearly USD 170000.00 300000.00 YEAR
Job Description & How to Apply Below

Hadrian - Manufacturing the Future

Hadrian is building autonomous factories to reindustrialize America. By combining AI, advanced software, robotics, and full-stack manufacturing, we help aerospace and defense companies build rockets, satellites, aircraft, ships, and other mission-critical systems up to 10x faster and at significantly lower cost.

Following our $1.37B Series D at a $7.87B valuation, Hadrian is rapidly expanding our manufacturing footprint, launching new capabilities across welding, casting, forging, electronics, additive manufacturing, and more, while scaling our Factory-as-a-Service platform to transform how critical products are built.

Backed by leading investors including JPMorgan Chase, Valor Equity Partners, Andreessen Horowitz, Founders Fund, 137 Ventures, Lux Capital, T. Rowe Price, and Morgan Stanley, we’re building the future of American manufacturing—and looking for exceptional people to help make it happen.

If you’re ready to take on the most challenging and rewarding work of your career while helping create American manufacturing jobs for generations to come, you’re exactly who we’re looking for.

The Role

Hadrian's factory data originates from production applications, operational databases, quality systems, ERP systems, and machines on the factory floor. This data fuels production schedules, machine-learning systems, engineering analysis, and company reporting.

As a Data Platform Engineer, you will own key segments of the data flow from source to trusted dataset: ingestion, change data capture, streaming, lakehouse storage, orchestration, transformation, contracts, quality, and lineage. Some data sources may involve machines, PLCs, historians, and industrial protocols. Controls experience is advantageous but not required.

This is a data-platform and distributed-systems role. Your work should enable new sources to be integrated easily, make failures straightforward to repair, and ensure datasets are reliable for use by Analytics, Data Science, Operations Research, and ML systems.

What You'll Do
  • Build the data backbone for autonomous factories, transforming machine signals, quality events, work orders, and application changes into trusted data used by scheduling, ML, and operations.

  • Build ingestion, CDC, and streaming capabilities for transactional data, events, telemetry, and files; explicitly manage ordering, deletes, retries, replay, idempotence, and back pressure.

  • Define versioned data and event contracts with upstream teams, supported by testing and service targets for freshness, completeness, and correctness.

  • Model telemetry, quality events, work orders, and operational data into datasets with explicit grain, identity, time, provenance, and history.

  • Own Dagster orchestration, dbt transformation, data CI/CD, backfills, lineage, observability, and offline feature datasets for ML.

  • Collaborate with Manufacturing Operations and Infrastructure to acquire data from machines, PLCs, historians, OPC-UA, MTConnect, and MQTT sources as needed.

What We're Looking For
  • Experience building and operating production data infrastructure or distributed data systems, including on-call ownership and recovery efforts.

  • Strong production Python and advanced SQL and data-modeling skills, including incremental processing, temporal data, and schema evolution.

  • Experience with Kafka or another event-streaming platform, plus CDC or other stateful incremental pipelines.

  • Experience operating Snowflake, and with a lakehouse table format such as Iceberg, Delta, or Hudi, including expertise in partitioning and compaction.

  • Experience with tools such as Dagster, Airflow, Argo, or Prefect; dbt or similar transformation frameworks; and Kubernetes or infrastructure as code.

  • Strong judgment regarding contracts, failure modes, and the needs of downstream analytics, ML, and operational systems.

What Will Set You Apart
  • Experience running Snowflake and Iceberg together or designing a hybrid warehouse and lakehouse architecture.

  • Production experience with PeerDB, Debezium, Flink, Spark Structured Streaming, Redpanda, Bufstream, or similar CDC and streaming systems.

  • Proficiency with Click House or another low-latency analytical…

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