Build and operate machine learning models to enhance fraud detection and payment authorization for Link at Stripe.
Posted by employer 1 day ago
First seen on Joblaze 3 hours ago
Last verified on the company career page 3 hours ago
What you'll build
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Requirements
Not disclosed in this posting: compensation, work arrangement, visa sponsorship.
Joblaze summary
In the role of Machine Learning Engineer on the Link Fraud and Auth team at Stripe, the individual will focus on developing and managing machine learning models to detect and mitigate fraud while enhancing payment authorization rates. Key skills include proficiency in Python and experience with tools like SQL and Spark, as well as a solid understanding of production ML systems. This position is suited for seasoned professionals with over six years of experience, particularly those with a background in fraud detection or risk modeling. The team plays a crucial role in ensuring the security and efficiency of Link's payment solutions.
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From the original posting
Link is a digital wallet designed for fast and secure online payments. It allows consumers to save and use their preferred payment methods across the Link network, helping them check out quickly and securely wherever Link is accepted.
The Link Fraud and Auth team works to make Link the most trusted and highest-performing way to pay. We protect consumers and merchants from fraud, abuse, and financial loss while maximizing authorization rates for good users. Our work spans consumer-facing experiences, payment infrastructure, and ML powered risk systems.
We manage fraud and financial risk across a growing range of novel Link features, including Link’s agentic wallet, stored balance, and LPMs. The team also owns Instant Bank Payments, a proprietary payment method built on ACH rails, offering merchants immediate confirmation while protecting them from bank-initiated returns. IBP is the heart of Link’s revenue engine, giving LFA engineers the opportunity to shape and scale one of Link’s most important products.
As a machine learning engineer on Link Fraud and Auth, you’ll build and operate models and risk decisioning systems that protect Link while helping more legitimate payments succeed. You’ll work across the full machine learning lifecycle, from analyzing fraud patterns and identifying opportunities to building, deploying, monitoring, and improving models in production. You’ll use data to form hypotheses, make practical modeling choices, and define technical direction in partnership with Engineering, Product, and Data Science. Your work will directly influence Link’s fraud performance, authorization rates, and ability to expand into new products and payment experiences.
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.
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