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Senior ML Engineer

Strava
San Francisco, United Statesfull_timeVerifiedPosted 30 Apr 2025
💰 $210,000/yr($180,000/yr$210,000/yr)

About the role

About This Role

Strava is the app for active people. With over 150 million athletes in more than 185 countries, Strava is where connection, motivation, and personal bests thrive. No matter your activity, gear, or goals, we help you find your crew, crush your milestones, and keep moving forward. Start your journey with Strava today.

Our mission is simple: to motivate people to live their best active lives. We believe in the power of movement to connect and drive people forward.

We are looking for a Senior Machine Learning Engineer to join the growing AI and Machine Learning team at Strava. This team is responsible for sophisticated machine learning models and systems which provide value to Strava athletes including personalization, recommendations, search, and trust and safety. The team also maintains the ML platform and infrastructure that enables our team to iterate on models quickly and deploy them reliably at scale.

This is an important role in the ML team and across Product teams designing, roadmapping, and implementing innovative machine learning algorithms. We value full stack ML engineers who are able to work on all parts of an ML pipeline from model building, evaluation, optimizing performance, and ensuring the scalability and reliability of these production models. We also seek those who can improve the systems and tools behind the ML pipeline to further empower the team.

We follow a flexible hybrid model that generally translates to around half your time on-site in our San Francisco Office—roughly three days per week.

What You’ll Do:

  • Build for a Well Loved Consumer Product: Work at the intersection of AI and fitness to launch and optimize product experiences that will be used by tens of millions of active people worldwide
  • Own End to End AI Systems: Lead key projects powered by ML on the Strava platform end-to-end, from initial model prototyping to shipping production code to scaling and optimizing inference and deployment
  • Shape AI at Strava: Be a strong voice and mentor on a highly collaborative team with a range of experience levels. Work across teams to deploy ML solutions in multiple surfaces and build out our technical ML capabilities.
  • Innovate in AI for Fitness: Design and develop novel models and methodologies to take on novel problems in that improve athlete experience, including recommendation systems, activity prediction, and personalized insights
  • Build from a rich dataset: Explore and use Strava’s extensive unique fitness and geo datasets from millions of users to extract actionable insights, inform product decisions, and optimize existing features

You Will Be Successful Here By:

  • Driving innovation with Product in mind: Stay up-to-date with the latest research in machine learning, AI, and related fields. Experiment, advocate and get buy-in for innovative techniques to improve existing products or explore new features that result in step function changes to how we build AI at Strava.
  • Leading as an Owner: Owning your work end-to-end and being accountable for the outcomes in the projects you lead, influencing the ML team, partner teams and landing impact for the business. Ensure the end to end system delivers as expected through collaboration with partners.
  • Analyzing the Data: Work closely with product managers, data scientists, and engineers to find opportunities for applying machine learning to drive business impact and enhance Strava’s features and measure impact.
  • Collaborating in and across teams: Build relationships, advocate and communicate with crossfunctional partners and product vertical to identify opportunities and bring your technical vision to life.
  • Raising the ML standard: Mentor engineers to shape how we do ML at Strava. Drive best practices for model development, deployment, and maintenance and be a go-to source of knowledge of the field.
  • Being passionate about the work you are doing and contributing positively to Strava’s inclusive and collaborative team culture and values

What You’ll Bring to the Team:

  • Have worked on complex, ambiguous machine learning problems and broken them down into manageable tasks with both strategies and tactical execution.
  • Demonstrated technical leadership in leading projects and the ability to mentor and grow early career team members.
  • Have demonstrated strong interpersonal and communication skills, and collaborative approach to drive business impact across teams.
  • Have experience building, s

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Company

Strava

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