Geospatial Data Engineer

Greenhouse Software, Inc.

Berlin

Hybrid

EUR 90.000 - 130.000

Vollzeit

Vor 12 Tagen
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Benefits dieser Stelle

Remote-friendly Germany-wide
Home-office budget
30 days vacation
Performance bonuses
Team gatherings

Zusammenfassung

Orcrist is building a next generation data intelligence platform, handling petabyte-scale data with sub-second queries. The product is Kubernetes-based and offered as B2B SaaS or self-hosted on-prem, including air-gapped deployments.

You will develop ingestion, processing, cataloging, and serving capabilities for data we acquire, retain, and use, using Python and Go across provider APIs, raster/vector pipelines, and GeoKlass datasets to support fast, reliable analytics.

Qualifikationen

  • Several years of data or backend engineering experience with substantial geospatial work.
  • Strong Python and Go capabilities for services, integrations, or processing infrastructure.
  • Experience with geospatial libraries (GDAL/Rasterio, GeoPandas, Shapely) and spatial databases (PostGIS).
  • Familiarity with STAC/pgSTAC, PySTAC, TiTiler, and OGC data services.

Aufgaben

  • Build provider integrations for imagery search, acquisition, download, and delivery tracking.
  • Ingest optical, multispectral, thermal, and SAR data from multiple sources.
  • Develop raster ETL for metadata extraction, reprojection, and quality checks.
  • Create vector pipelines for geometry validation, indexing, and GeoParquet/PMTiles assets.
  • Implement imagery cataloging with STAC/pgSTAC and maintain data provenance and access controls.
  • Design efficient storage and delivery paths using S3 and HTTP range requests.

Kenntnisse

Geospatial data processing
Python
Go
SQL
Linux & containers
English communication

Tools

GDAL/Rasterio
GeoPandas/Shapely
PostGIS
STAC/pgSTAC
TiTiler PySTAC
S3-compatible storage
Apache Spark/Dask

Jobbeschreibung

Orcrist is building a next generation data intelligence platform using cutting-edge technologies. We're handling petabyte-scale data with sub-second queries. Our product is a Kubernetes‑based platform delivered as B2B SaaS or as a self‑hosted on‑prem solution, including air‑gapped deployments. We enable customers across defense, law enforcement, and enterprise to turn mission-critical data into actionable intelligence.

Role

Build the data foundation that makes satellite imagery and geospatial datasets discoverable, reliable, and ready for analysis. You'll use Python and Go to develop ingestion, processing, cataloging, and serving capabilities for data we acquire, retain, and use within our platform.

The work spans provider APIs, large raster deliveries, vector datasets, spatial databases, and object storage. You'll partner with Foundation and Platform engineers on infrastructure, and with data scientists and application engineers on the data products they need.

What you'll do
  • Build provider integrations for imagery search, acquisition, download, and delivery tracking, handling authentication, rate limits, retries, and differences in vendor metadata.
  • Ingest optical, multispectral, thermal, and SAR products from commercial and open sources. Our intended provider landscape includes Airbus Pléiades, Satellogic, SatVu, ICEYE, and Copernicus Sentinel missions.
  • Develop raster ETL for metadata extraction, coordinate transformation, reprojection, resampling, mosaicking, COG creation, overviews, and quality checks.
  • Build vector pipelines for geometry validation, schema normalization, spatial partitioning, indexing, and production of GeoParquet and PMTiles assets.
  • Implement imagery cataloging with STAC/pgSTAC and spatial data services with PostGIS, preserving acquisition times, footprints, source metadata, processing history, and access restrictions.
  • Design efficient storage and delivery paths using S3-compatible buckets, HTTP range requests, columnar formats, and appropriate caching and tiling strategies.
  • Integrate processing with Sentinel's orchestration and service contracts. Make workflows resumable, safe to retry, observable, and capable of processing data larger than memory.
  • Track freshness, completeness, lineage, and processing cost. Diagnose malformed deliveries, missing assets, inconsistent catalogs, and performance bottlenecks.
About you
  • Several years of data or backend engineering experience, with substantial hands‑on work on geospatial or Earth observation data.
  • Strong Python skills and practical Go experience for services, integrations, or processing infrastructure.
  • Experience with GDAL/Rasterio and vector tooling such as GeoPandas, Shapely, or equivalent libraries.
  • Strong SQL and PostgreSQL/PostGIS knowledge, including spatial indexes, query planning, and efficient bulk loading.
  • Experience handling formats such as GeoTIFF, GeoJSON, GeoPackage, and Shapefile, with a sound understanding of coordinate reference systems, nodata, geometry validity, and the effect of resampling on data quality.
  • Experience with object storage and automated pipelines, including failure recovery, deduplication, metadata validation, and reproducible outputs.
  • Comfortable packaging and operating software on Linux with containers, automated tests, and useful monitoring.
  • Clear communication in English and an ability to agree data contracts with scientific and application teams. Eligible to work in Germany.
  • STAC/pgSTAC, PySTAC, TiTiler, Martin, or OGC data services.
  • Apache Spark, Dask, xarray, DuckDB, Apache Arrow, or Apache Sedona for larger geospatial workloads; familiarity with multidimensional formats such as Zarr, NetCDF, and HDF5.
  • Apache Iceberg or similar analytical table formats, including schema evolution, partitioning, and integration with data catalogs.
  • Temporal, Kafka, Kubernetes, and operation in self‑hosted or air‑gapped environments.
  • Provider delivery formats such as DIMAP, satellite acquisition APIs, or preparation of optical, thermal, and SAR data for downstream analysis.
  • Experience handling Copernicus Sentinel-1 and Sentinel-2 data, including product metadata, processing levels, and quality information.
  • Experience supporting scientific processing in production environments.
  • Experience working in defence and intelligence environments or on related projects.
  • Strong interest and practical ability in agentic software development: using coding agents to plan, implement, test, and review software, and keeping up with rapidly evolving tools, techniques, and trends.
  • German language skills or contributions to geospatial open source.
What we offer
  • Ownership of the pipelines and data services behind a growing geospatial platform.
  • Work with diverse satellite and spatial datasets, from provider deliveries to reusable analytical products.
  • A Python and Go environment with room to shape processing, cataloging, and performance practices.
  • Remote‑first, Germany‑wide: Work from wherever you do your best work, with regular team gatherings in Berlin and other off‑site locations.
  • Flexibility by default: Flexible working hours help you make work fit your life.
  • Your setup, your way: Get a personal home‑office equipment budget to create a workspace that works for you.
  • 30 days of vacation:Take the time you need to recharge and come back with fresh energy.
  • Keep growing: We invest in your personal and professional development.
  • Get rewarded for impact: Performance bonuses are tied to agreed objectives and key results.
  • A warm welcome: Every new team member gets a welcome goodie bag.
  • Good people, good times: From summer and Christmas parties to regular team gatherings, we make time to celebrate together.
  • A mission that matters: Work on challenges with tangible impact on public safety and national security.
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