๐Ÿ“
Toronto, Canada

Data Science Intern, Algorithms (Summer 2026)

Internship
Technology & Digital
Data / Analytics
Posted:
December 31, 2025

Lyft

Ride-hailing & shared mobility service
68.1
Palpable Score
Apply >view company >

Lyftโ€™s Data Science Team builds mathematical models underpinning the platformโ€™s core services. Compared to other technology companies of a similar size, the set of problems that we tackle is incredibly diverse. They cut across optimization, prediction, modeling, inference, transportation, and mapping. We're looking for Masters or PhD students who are passionate about solving mathematical problems with data and are excited about working in a fast-paced, innovative and collegial environment.

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We are hiring for a variety of Data Science interns, focusing on the following specialties: ย 

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Optimization: Construct and fit statistical or optimization models that facilitate automated decision making in the app.

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Machine Learning: Design, build, tune, and deploy machine learning models with a special emphasis on feature engineering and deployment.

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Inference: Design and analyze tests in our dynamic marketplace, estimating statistical and ML models to enable better decisions, and developing and evaluating algorithmic policies in our pricing, dispatch, and incentives systems.

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You will report into a Science Manager.

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Responsibilities:

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Experience:

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About the company

Lyft

Company overview
Lyft is a ride-hailing and mobility company operating primarily in the United States and Canada, with additional mobility products such as bikeshare in some cities. Lyft builds consumer apps for riders and drivers, plus marketplace, mapping, payments, safety, and support systems behind the scenes. The company also invests in newer product areas (for example, accessibility-focused services and partnerships tied to autonomous driving). Corporate roles span engineering, data, product, design, operations, risk, and corporate functions.

Locations and presence

Lyft is headquartered in San Francisco and hires across multiple U.S. hubs, with roles labeled remote, hybrid, and in-office depending on team. Lyft has publicly stated a โ€œfully flexibleโ€ approach for most corporate employees, while some roles still expect location-based collaboration.

Palpable Score

68.1
/ 100
Lyft offers credible entry points through internships, new graduate roles, and a software engineering apprenticeship pathway, but Lyft does not appear to hire early-career talent at the kind of predictable volume seen in the biggest tech employers. Lyft is fairly solid on learning signals (mentors, cohort touchpoints), while hiring transparency and outcome proof are more limited because Lyft does not publish timelines, feedback norms, or cohort metrics. Pay looks competitive and ranges often show up in postings, but stability and outcomes are harder to score higher given limited published progression data and recent workforce reshaping.
view full company profile >

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