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Who we are:
Shape a brighter financial future with us.
Together with our members, we’re changing the way people think about and interact with personal finance.
We’re a next-generation financial services company and national bank using innovative, mobile-first technology to help our millions of members reach their goals. The industry is going through an unprecedented transformation, and we’re at the forefront. We’re proud to come to work every day knowing that what we do has a direct impact on people’s lives, with our core values guiding us every step of the way. Join us to invest in yourself, your career, and the financial world.
The role:
We are looking for a Fraud Model Analyst to join our Fraud Model Development team, with a focus on governance, oversight, and lifecycle management of third-party (vendor) fraud models. This role will be responsible for ensuring vendor models are compliant, well-documented, and effectively monitored within SoFi’s fraud ecosystem.
This individual will partner closely with Model Risk Management (MRM), Legal, Compliance, Fraud Strategy, and external vendors to support onboarding, validation, and ongoing monitoring of vendor models. The role will also contribute to improving fraud decisioning by combining insights from vendor models with internally developed models and strategies.
The ideal candidate has a strong analytical mindset, is comfortable working with data, and can effectively collaborate across technical, business, and risk/compliance stakeholders.
By joining SoFi, you'll become part of a forward-thinking company that is transforming financial services for the better. We offer the excitement of a rapidly growing startup with the stability of an industry leading leadership team.
What you’ll do:
The Fraud Model Analyst will help SoFi scale and govern vendor fraud models by:
Managing the end-to-end lifecycle of vendor fraud models, including onboarding, documentation, monitoring, and periodic reviews
Partnering with Model Risk Management (MRM), Legal, and Compliance teams to ensure adherence to governance and regulatory requirements
Coordinating with external vendors to obtain model documentation, technical details, and performance insights
Analyzing model performance metrics (e.g., fraud capture, false positive rates, drift) and identifying risks or improvement opportunities
Investigating model behavior and data issues using SQL and internal datasets to support root cause analysis
Supporting fraud model development initiatives by contributing to feature analysis, performance benchmarking, and strategy design
Collaborating with Fraud Strategy, Data Science, and Engineering teams to integrate vendor models into fraud decisioning frameworks
Preparing and maintaining model documentation, validation materials, and audit responses
Supporting ongoing monitoring and reporting of vendor model performance, including identifying degradation and recommending actions
Acting as a bridge between Data Science, Engineering, Fraud Strategy, and Risk/Compliance teams to ensure alignment
Managing multiple models and timelines, ensuring timely delivery of governance and reporting requirements
What you’ll need:
3–5 years of experience in fraud, risk analytics, model governance, or related roles
Bachelor’s degree in a quantitative field (e.g., Statistics, Mathematics, Economics, Engineering, Computer Science) or equivalent experience
Working knowledge of Model Risk Management (MRM) frameworks and model governance processes
Strong analytical skills with experience evaluating model performance and identifying issues
Proficiency in SQL and Python for data analysis and investigation
Experience working with fraud model performance metrics (e.g., fraud capture rate, false positive rate, precision/recall, AUC, drift monitoring)
Familiarity with data science workflows and ability to work with datasets to support model analysis and validation
Experience working with cross-functional stakeholders and external partners/vendors
Strong documentation skills, including experience preparing model documentation, monitoring reports, or audit responses
Clear communication skills with the ability to translate technical concepts into business and compliance context
Strong organizational and program management skills, with the ability to manage multiple priorities
Nice to have:
Experience working with fraud models or contributing to fraud model development
Familiarity with machine learning concepts and ability to interpret model outputs and performance tradeoffs
Prior experience working with vendor models (e.g., identity, device, or fraud risk vendors)
Exposure to regulatory/compliance environments in financial services
Experience with model monitoring frameworks or tools
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