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Salary
≈ $246k – $502k per year (Estimated)
Location
In office
Seniority
Staff · 10+ years exp
Visa
H-1B filings in 12 months: 319 · for this role: 198 · green card filings: 110

Confirmed on the employer's own hiring board on Oct 9, 2026. First seen by Alion on Oct 7, 2026. Stripe scores B on the Alion truth index.

Overview
Company
Impact
Profile match
Stripe is a financial infrastructure company founded in 2010 by the Irish brothers Patrick and John Collison, dual-headquartered in South San Francisco and Dublin. Its APIs let businesses accept payments, run marketplaces, issue cards, manage subscriptions and handle tax and compliance without building banking integrations themselves, and it processes well over a trillion dollars of volume a year for customers ranging from startups to the largest technology companies. Beyond payments the company has expanded into treasury and issuing, revenue and finance automation, stablecoin infrastructure through its Bridge acquisition, and fraud prevention powered by its own machine learning models.

Who we are

About the team

The Radar ML team builds the fraud detection models that protect Stripe's $1.9 trillion payment network from fraud. The team owns 10+ real-time deep learning models that must constantly evolve to stay ahead of fraudsters. Each ML improvement translates directly into dollar impact for Stripe and its users. 

The team's models also power the Radar product suite that tens of thousands of businesses use to screen payments and manage fraud. Radar is growing fast, and the team is actively building new products like defenses against AI token theft, free trial abuse, and programmatic attacks.

What you'll do

In this role, you will own ML work across the full lifecycle: researching new fraud patterns, building and deploying models, and sharing results directly with top Stripe customers. You will have opportunities to optimize Stripe’s most intensive ML models, and opportunities to ship 0-to-1 products from scratch.

Responsibilities

  • Design, build, train, evaluate, deploy, and own ML models in production that detect fraud across Stripe’s global payments network
  • Design and build large-scale ML systems that operate on diverse and large scale data
  • Experiment and iterate on ML models to achieve key business goals around data quality and accuracy
  • Develop pipelines and automated processes to train and evaluate models in offline and online environments
  • Integrate ML models into production systems and ensure their scalability and reliability
  • Collaborate with product, data science, and engineering partners across Stripe to identify opportunities where ML can improve outcomes for merchants and consumers
  • Engage with the latest ML/AI developments and take calculated risks in transforming innovative ideas into productionized solutions
  • Mentor engineers and contribute to a strong ML engineering culture within the team

Who you are

We're looking for someone who meets the minimum requirements to be considered for the role. If you meet these requirements, you are encouraged to apply. The preferred qualifications are a bonus, not a requirement.

Minimum requirements

  • 10+ years of industry experience building and shipping ML systems in production
  • Proficient with ML libraries and frameworks such as PyTorch, TensorFlow, XGBoost, as well as Spark
  • Hands-on experience in designing, training, and evaluating machine learning models
  • Hands-on experience in productionizing and deploying models at scale
  • Hands-on experience in orchestrating data pipelines and efficiently leveraging large-scale datasets
  • Strong collaboration skills and the ability to work across teams and contribute to peers' success
  • Ability to thrive with a high level of autonomy and responsibility and an entrepreneurial mindset

Preferred qualifications

  • MS or PhD degree in ML/AI or a related field (e.g., math, physics, statistics, computer science)
  • Experience in fintech, open banking, or financial data domains
  • Experience with NLP, LLMs, or text classification at scale
  • Experience in adversarial or noisy-data domains such as fraud detection, risk modeling, or data quality
  • Proven track record of building and deploying ML systems that have effectively solved ambiguous business problems
  • Experience with deep learning architectures, including transformers
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