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Geospatial Data Science Engineer

Job in Irvine, Orange County, California, 92713, USA
Listing for: Rivian and Volkswagen Group Technologies
Full Time position
Listed on 2026-07-29
Job specializations:
  • IT/Tech
    Data Scientist, Data Engineering, Machine Learning/ ML Engineer, Data Analyst
Salary/Wage Range or Industry Benchmark: 171100 - 213900 USD Yearly USD 171100.00 213900.00 YEAR
Job Description & How to Apply Below
Position: Staff Geospatial Data Science Engineer

About Us

Rivian and Volkswagen Group Technologies is a joint venture between two industry leaders with a clear vision for automotive’s next chapter. From operating systems to zonal controllers to cloud and connectivity solutions, we’re addressing the challenges of electric vehicles through technology that will set the standards for software-defined vehicles around the world.

About Us

Rivian and Volkswagen Group Technologies is a joint venture between two industry leaders with a clear vision for automotive’s next chapter. From operating systems to zonal controllers to cloud and connectivity solutions, we’re addressing the challenges of electric vehicles through technology that will set the standards for software-defined vehicles around the world.

The road to the future is uncharted. By combining our expertise across connectivity, AI, security and more, we’ll map a new way forward. Working together, we’ll create a future that’s more connected, more intelligent, more sustainable for everyone.

Role Summary

RV Tech is seeking a Geospatial Data Science Engineer to pioneer the data layer powering our next-generation software-defined electric vehicles. In this senior role, you will be responsible for transforming massive, high-frequency streams of vehicle sensor observations into highly accurate, dynamic map features that the vehicle can use for localization, routing, and advanced driver assistance systems (ADAS). You will apply advanced computational statistics, machine learning, and spatial analysis to process and model large datasets, drawing actionable insights that translate raw fleet telemetry into live, high-definition maps.

We value proactive problem-solvers who thrive in autonomous roles and are passionate about building performant, scalable systems at the intersection of data science and robotics.

Responsibilities
  • Geospatial Pipeline Engineering:
    Design, build, and optimize scalable data pipelines that ingest, clean, and segment billions of daily vehicle sensor observations into consumable map features and geometries.
  • Statistical Modeling & Insights:
    Apply advanced data mining and analytic methods to detect real-world changes (e.g., road closures, new lanes, construction) and design rigorous statistical tests to validate map accuracy.
  • Map Generation & Map Matching:
    Develop robust algorithms for map matching, trajectory smoothing, and sensor fusion to convert noisy probe data into high-fidelity road geometry and attributes.
  • System Design & Architecture:
    Lead the technical design of spatial data systems, ensuring low-latency query performance, efficient spatial indexing (e.g., H3, S2), and scalable storage of vector/raster map data.
  • Stakeholder

    Collaboration:

    Partner with embedded software engineers, perception teams, and cloud architects to align onboard vehicle capabilities with cloud-based mapping platforms.
  • Staying Ahead of the Curve:
    Stay up-to-date with the latest advancements in big data technologies, computational statistics, machine learning, and automated mapping practices.
Qualifications

Minimum Qualifications:

  • Education:

    Bachelor's Degree in Statistics, Applied Mathematics, Computer Science, Geoinformatics, Robotics, or a related quantitative field with an emphasis or thesis work on computational statistics, data mining, machine learning, or spatial optimization.
  • Experience:

    8+ years of related professional experience building and maintaining large-scale data processing and predictive systems.
  • Advanced Analytics & Data Mining:
    Expert-level knowledge in data mining and analytic methods such as regression, classifiers, clustering, association rules, decision trees, and Bayesian network analysis.
  • Geospatial Expertise:
    Proven experience working with geospatial data, handling noisy time-series datasets, writing advanced spatial queries in PostGIS, and utilizing spatial libraries/indexing systems (e.g., H3, S2, Geo Pandas).
  • Programming & Scripting:
    Proficiency with statistical analysis packages and programming languages, including Python, SQL, and shell scripting (or familiarity with R/MATLAB).
  • Statistical Testing:
    Strong statistical foundation with proven expertise in designing, executing, and analyzing…
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