Senior Data Scientist - Telematics
Listed on 2026-06-13
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Software Development
Machine Learning/ ML Engineer, AI Engineer (Applied/Software), Data Scientist
About the Role
Few teams use phone sensor data to price commercial motor insurance a Senior Data Scientist, you’ll shape how millions of trips are turned into risk signals. You’ll own behavioural features and algorithms from hypothesis to production, working at the intersection of data science and engineering on GPS, inertial, and other sensor data.
You’ll move between quick heuristics and full ML models depending on what the problem calls for. You ship code to production, not just notebooks.
What You’ll Be Doing- Work with raw, high‑frequency sensor data: GPS, accelerometer, gyroscope, s isn’t warehouse‑tabular data: it’s noisy, physical, and where the signal actually lives. You’ll be processing more than 250k trips per day.
- Research new behavioural features and detection algorithms: read the literature, try ideas, kill the ones that don’t survive contact with real data.
- Design and build behavioural features and factors that feed Zego’s understanding of driving quality, context, and risk.
- Take ideas from hypothesis to production: prototyping in notebooks, then writing the production‑grade Python and SQL that scales.
- Prioritise simple, robust solutions, rule‑based when that’s enough, ML when it’s warranted.
- Lead experiments, validate impact with data, and automate insight generation.
- Collaborate closely with software engineers, product managers, and actuaries to get features into the pricing path and measure their effect on real policies.
- Translate complex sensor data into clear findings that non‑technical stakeholders can act on.
- MSc (or integrated MEng/MSc) in a quantitative field:
Engineering, Computer Science, Physics, Mathematics, or similar. This is a core role that requires strong engineering foundations. - Working knowledge of digital signal processing or sensor physics — you can reason about noise, sampling, filtering, and the physical meaning behind a signal, not just its numbers.
- Proven track record delivering data science or data engineering projects into production. You write production‑grade code, not just notebooks.
- Strong Python and SQL (we use Snowflake). Comfortable with the scientific Python stack:
Polars, Pandas, Num Py, Sci Py, and scikit‑learn. - Experience developing and evaluating ML models on tabular data — classification or regression tasks where evaluation matters as much as model choice. Think passenger‑vs‑driver detection, transport‑mode classification, or score predictiveness.
- You’ve designed, built, and maintained data pipelines from scratch: reliable, observable, and scalable.
- Fluent with AI coding assistants as part of daily engineering work. We use Claude Code across the team and expect candidates to be comfortable working with tools of this kind.
- Strong communicator: you translate ambiguous problems into structured, testable ideas, and share insights clearly with technical and non‑technical audiences.
- Growth mindset: curious, open to feedback, driven to keep improving.
- Experience applying signal processing to noisy, high‑frequency sensor/time‑series data (GPS, accelerometer, IMU) in production.
- Exposure to insurance, mobile data, or behaviour modelling.
- Experience with cloud platforms (AWS), containerisation (Docker, Kubernetes), or data orchestration frameworks.
- Familiarity with our ML and tooling stack: MLflow for experiment tracking, DVC for data versioning, Streamlit for internal apps and demos.
We reward our people well. Join us and you’ll get a market‑competitive salary, private medical insurance, company share options, generous holiday allowance, and a whole lot of wellbeing benefits.
We also offer an annual flexible hybrid working contribution, which you can use to support your travel to the office or towards your own personal development. And that’s just for starters!
Equal Opportunity EmployerWe’re an equal opportunity employer and we value diversity at our company. We do not discriminate on the basis of race, religion, national origin, gender, sexual orientation, age, marital status, or disability status.
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