Synced from Greenhouse · Sep 8

Machine Learning Engineer

CoinbaseHybrid - San Francisco, CAPosted Sep 8, 2026
Machine Learning EngineerIntern
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Mirrored from Coinbase's own Greenhouse careers system · refreshed hourly

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Other open Coinbase roles
Sep 8
Posted
Greenhouse
Applicant system
Job descriptionReq 8175441

Ready to do the most impactful work of your career? At Coinbase, we are uncompromising on our mission to increase economic freedom. The bar is high, the environment is intense, and we like it that way. This isn't a place for complacency, it’s a place to be pushed past your perceived limits. If you're ready to build the future of finance alongside people who refuse to settle for "good enough," you belong here. Coinbase is a remote-first, but not remote-only company. Expect to get together quarterly for intense in-person working sessions called “surges.” learn more about working at Coinbase.

This is a 12-week internship during summer 2027. 

You'll join Coinbase's Machine Learning team and work alongside senior engineers building ML models and pipelines that make our platform more secure, personalize user experiences, and unlock new use cases for crypto. As an MLE intern, you'll take ownership of a research-to-production project, applying cutting-edge ML techniques to real-world problems at blockchain scale.

What you'll do:

  • Develop, deploy, and operate machine learning models and pipelines at production scale
  • Drive an end-to-end research project applying modern ML techniques to solve a defined business problem
  • Partner with senior engineers and product teams to identify new ML applications for blockchain and crypto use cases
  • Present findings and recommendations to cross-functional stakeholders at the conclusion of your internship

Required Skills and Experience:

  • Currently pursuing a Ph.D. with published or in-progress research in machine learning, deep learning, or a closely related field
  • Demonstrated proficiency building and training models using ML frameworks such as PyTorch or TensorFlow
  • Experience applying ML techniques including supervised learning, unsupervised learning, or reinforcement learning to structured or unstructured datasets
  • Familiarity with software engineering fundamentals including version control, testing, and writing production-quality Python code
  • Utilizes generative AI responsibly, maintaining human oversight to deliver business-ready outputs and drive measurable improvements in workflow efficiency, cost, and quality.

 

Req ID: P78143

#LI-Hybrid

Pay Transparency Notice: Depending on your work location, the target hourly rate for this position can range as detailed below.
 
Hourly Rate:
$60$60 USD
  • Application Limit: Candidates may submit a maximum of 3 applications within a 6-month period.
  • Equal Opportunity Employer: Coinbase is an Equal Opportunity Employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, disability, protected veteran status, or genetic information. Applicants with criminal histories will be considered consistent with applicable federal, state, and local laws.
  • US Applicants: View Employee Rights, Know Your Rights, and E-Verify Notice of Participation.
  • Accommodations: If you are an individual with a disability who needs a reasonable accommodation, email us your request and contact info at accommodations[at]coinbase.com. Need screen reading technology? Click here to download a free compatible screen reader and view the tutorial.
  • Data Privacy & Arbitration: By submitting your application, you agree to our Candidate Privacy Notice. US applicants: By submitting your application, you agree to Arbitration of Disputes.
View original posting on Greenhouse

What applying to Coinbase usually looks like

Based on publicly available information, candidates applying through greenhouse for roles at Coinbase can typically expect an online application followed by an initial recruiter screen. The process may include multiple stages such as a hiring manager conversation, one or more technical or role-specific assessments, and panel interviews with prospective peers or stakeholders. Take-home exercises or case studies are common for technical, design, and analytical roles, while behavioral and values-based questions often appear throughout. Communication is generally handled through the greenhouse platform, with automated updates on application status. Response times vary and may depend on team needs and role seniority. Candidates can generally expect an opportunity to ask questions about team structure and culture during later stages, though exact steps and timing can differ by department and location.

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Machine Learning Engineer
Coinbase · Hybrid - San Francisco, CA
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