Data Scientist
San Francisco, CA · HybridFull-time$155–180K/yrPosted 5mo agoStill listed 2 days ago
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Job overview
Middesk is hiring a Data Scientist. Middesk seeks a hands‑on data scientist to build AI‑driven fraud and risk systems, applying graph‑based and weak‑supervision techniques to messy, real‑world data while scaling infrastructure and improving signal labeling.
Key focus areas include Build fraud & risk systems and ship production detection solutions, Tackle problems with extreme class imbalance and sparse signals, and Apply graph‑based approaches and entity resolution to uncover hidden connections.
Successful candidates bring 5+ Years Experience In Fraud, Risk, Or Trust & Safety and Experience Building And Shipping Production Systems. Important skills include Fraud & Risk Systems, KYB, Trust & Safety, Compliance Workflows, Graph-Based Approaches, and Entity Resolution Techniques. Preferred (not required): Graph Data Approaches, Relational Data Approaches, Knowledge Graphs, and Network Analysis.
Skills & qualifications
Skills
Qualifications
Full job description
About Middesk: Middesk is building the data and intelligence infrastructure that helps businesses work together with confidence. We started by creating a comprehensive platform for understanding businesses, bringing together authoritative and proprietary data to help customers verify business identities, onboard customers faster, and manage risk throughout the customer lifecycle.
Today, Middesk is used by more than 700 banks and fintechs, and in 2025 we verified more than 7 million companies. We've also expanded beyond business verification to help companies form, register, manage, and maintain their businesses, supporting more than 50,000 companies in setting up over 100,000 accounts required to hire employees, run payroll, and stay compliant.
Middesk came out of Y Combinator, and is backed by Sequoia Capital, Accel, Insight Partners, and Canapi. We're proud to be named on the Forbes Fintech 50 and Best Startup Employers lists.
About The Role: We’re building AI-driven applications that simplify customer workflows, starting with business onboarding. With our proprietary identity data and deep domain expertise, we’re in a strong position to expand into a broader set of intelligent, risk-aware products.
We’re looking for a hands-on engineer to help build the foundation for these systems. This role is less about inventing new ML algorithms and more about applying the right techniques to messy, real-world problems. You’ve worked in fraud, risk, or trust domains, and you understand how bad actors behave, how data breaks, and how to still ship reliable systems anyway.
This is a highly technical, hands-on role with broad influence over how we design, build, and scale data-driven systems at Middesk.
We follow a hybrid work model, and for this role, there is an expectation of 2 days per week in our SF/NYC office. Candidates should be based within a commutable distance, as we believe in the value of in-person collaboration and building strong team connections while also supporting flexibility where possible.
What You’ll Do:
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Build fraud & risk systems Design and ship production systems that detect and prevent fraud across KYB, trust & safety, and compliance workflows.
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Work with messy, real-world data Tackle problems with extreme class imbalance, sparse signals, evolving adversarial behavior, and limited ground truth.
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Leverage relationships in data Apply graph-based approaches and entity resolution techniques to uncover hidden connections and improve risk detection.
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Improve signal & labeling Use a mix of heuristics, weak supervision, and modern AI tools (including LLMs where appropriate) to generate better features and labels.
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Help scale our infrastructure Partner with engineering to build and evolve systems for feature generation, model training, and production deployment across multiple use cases.
What We’re Looking For:
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5+ years of experience in fraud, risk, or trust & safety You’ve worked on real-world fraud or abuse problems and understand the domain deeply.
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Experience building and shipping production systems You’ve deployed models or data-driven systems that power external-facing products.
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Strong foundation in applied ML or data systems Comfortable working on classification problems with real-world constraints like imbalanced data, sparse signals, and changing patterns.
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Experience with graph or relational data approaches Familiarity with knowledge graphs, network analysis, or entity linking is strongly preferred.
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Hands-on and pragmatic You focus on impact over perfection and know how to balance speed, accuracy, and maintainability.
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