Data Platform Engineer - Data Operations (all genders)
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Job description
Data is the fuel of STARK’s AI stack - you build the engine that makes it usable. You own the software backbone of our data platform: the metadata systems, ETL pipelines, data contracts, catalogs, databases, and internal tools that let engineers find, understand, validate, and reuse terabytes of multi-sensor field data in minutes, not days. You treat data context as a product: structured, searchable, version-aware, documented, and traceable from raw recording to processed asset, annotation delivery, dataset, and downstream ML workflow. Today, much of this is manual, scattered, or implicit - your job is to automate it away, support labeling efforts with the right data tooling, and turn operational data into reliable systems., * Design, implement, and maintain our metadata database and data catalog (datasets, recordings, sensors, labels, lineage)
- Build and operate ETL/ingest pipelines that bring field recordings, synthetic data, and external deliveries into our cloud storage (GCP)
- Own the data management and labeling lifecycle end-to-end: coordinate and communicate with external labeling companies and data subcontractors, track deliveries, run QA reports, and build the operational workflows they work in
- Develop internal enabling tools for the whole AI organization: dataset search and filtering, APIs/backend, dashboards, and self-service data access
- Run data migrations and indexing jobs; keep the catalog consistent and fast as data volume grows
- Handle admin support and user access management - and then automate these support tasks so they stop being manual work
- Establish good engineering hygiene in a young codebase: tests, typing, docs, logging, CI/CD
- Shape the long-term architecture and vision of the data platform together with the team
Requirements
- Strong Python
- Solid SQL/PostgreSQL, including schema design
- Experience with data modeling and metadata systems
- Experience designing and operating ETL/data pipelines
- Docker and CI/CD basics
- Hands-on with object storage (GCS, S3, or similar)
- Good software engineering hygiene: tests, docs, typing, logging
- Organized and pragmatic: you can prioritize between a quick fix and a proper solution, and you know when each is right
- Not allergic to support tasks - but technical enough to automate the support away
- Comfortable coordinating with external vendors and non-technical stakeholders, * Familiarity with ML datasets and labeling workflows (images, video, lidar; annotation formats like COCO)
- Experience with synthetic data generation or GenAI-assisted data workflows (auto-labeling, data augmentation, foundation-model-based curation)
- Experience with GCP services beyond storage (BigQuery, Cloud Run, IAM)
- Experience with data versioning / dataset tooling (DVC, LakeFS, FiftyOne, or similar)
- Experience in a startup environment - comfortable with ambiguity and changing priorities
- Exposure to robotics data formats (ROS bags, MCAP, PX4 logs)
About the company
STARK is a new kind of defence technology company revolutionizing the way autonomous systems are deployed across multiple domains. We design, develop and manufacture high-performance unmanned systems that are software-defined, mass-scalable, and cost-effective. This provides our operators with a decisive edge in highly contested environments.
We’re focused on delivering deployable, high-performance systems - not future promises. In a time of rising threats, STARK is bolstering the technological edge of NATO Allies and their Partners to deter aggression and defend Europe - today.
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