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About Us
With over 200 million customers in 50+ countries, Bolt is one of the fastest-growing tech companies in Europe and Africa. And it's all thanks to our people.
We believe in creating an inclusive environment where everyone is welcome, regardless of race, colour, religion, gender identity, sexual orientation, age, or disability.
Our ultimate goal is to make cities for people, not cars, and we need your help to achieve this mission!
About The Role
Identity sits at the core of Bolt’s platform and powers safe, seamless user experiences. You’ll lead discovery analyses across Identity flows (Verification, Comms, Authentication, User Insights & Privacy), translate patterns into hypotheses, and partner with product and engineering to design experiments and data-driven changes. Expect to prototype lightweight models where they’re the simplest, highest-leverage tool, keeping the emphasis on problem-finding, evidence, and impact.
Main tasks and responsibilities:
- Probe Identity funnels to find friction and opportunity (e.g., verification drop-offs, auth success/recovery, comms deliverability), size the impact, and turn insights into prioritized, testable ideas.
- Design and analyze A/B tests, and deliver crisp readouts with recommended decisions.
- Prototype lightweight models and decision rules (e.g., verification-related, anomaly/spoof detection, duplicate-account signals) with careful offline/online evaluation and simple monitoring; collaborate with engineers for productionization.
- Discover and evaluate new privacy-respecting features (document, behavioral, device/network history) that improve identity quality and user safety; articulate trade-offs and expected impact clearly to stakeholders.
- 1–4 years in a data-science or quantitative product role, with strong statistical thinking and curiosity for problem discovery.
- Proficient in SQL and Python (Pandas/NumPy; scikit-learn for light modeling); experienced in working with large datasets and communicating trade-offs clearly.
- Hands-on with experimentation and with causal/observational reasoning when randomized tests aren’t feasible.
- Comfortable turning ambiguous spaces into measurable metrics, hypotheses, and shipped improvements; you default to the simplest approach that moves the needle.
- Nice to have: exposure to computer vision or biometrics (images/selfies, MRZ/OCR, face matching, liveness), familiarity with evaluation practices.
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