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[Remote] Lead Fraud Data Scientist

Remote · USA Full-time New today

Note: The job is a remote job and is open to candidates in USA. Félix is building a financial ecosystem for Latin immigrants in the U.S. and is seeking a Lead Data Scientist for their Fraud team. The role involves leveraging machine learning and data analysis to develop models that detect and prevent fraudulent activity in real-time, ensuring a trustworthy platform for users.

Responsibilities

  • Define the long-term machine learning strategy for the fraud team, establish technical best practices, and mentor junior data scientists
  • Own the entire lifecycle of fraud detection models, from data exploration and feature engineering to model training, validation, deployment, and monitoring
  • Design and develop models specifically targeted at lending fraud typologies, including synthetic identity fraud, first-party loan default fraud, and application fraud
  • Conduct deep-dive investigations into emerging fraud patterns and user behavior, using clustering, outlier detection, network analysis, and other unsupervised techniques to uncover hidden risks and organized fraud rings
  • Design and execute A/B tests to measure the impact of new models, rules, and strategies on both fraud detection rates and user experience
  • Partner closely with Product, Engineering, Risk, and Operations teams to translate business needs into data science solutions, seamlessly integrate ML scores with rule engines, and communicate complex results to non-technical audiences
  • Deploy, monitor, and maintain machine learning models in a cloud environment, ensuring high availability and performance
  • Build and maintain dashboards using tools like Tableau or Looker to track key performance indicators (KPIs) like fraud loss rates, false positive rates, and model performance

Skills

  • 5+ years of experience in a hands-on data science role, building and deploying machine learning models
  • Proven experience leading complex data science projects from inception to production, including setting technical direction and guiding peers
  • Expert-level Python for data analysis and modeling (pandas, scikit-learn, etc.)
  • Advanced SQL skills for complex data extraction and manipulation
  • Deep experience with tree-based ML models (XGBoost, CatBoost, LightGBM) and statistical models (Logistic Regression, Lasso/Ridge)
  • Deep understanding of model explainability frameworks (SHAP, LIME) and algorithmic fairness to ensure models comply with credit lending regulations
  • Strong understanding of sampling techniques for handling highly imbalanced datasets
  • Practical experience with clustering and outlier detection techniques (e.g., K-Means, K Nearest Neighbors, Isolation Forest)
  • Proven experience with the full modeling lifecycle, including model deployment, monitoring, and maintenance on a cloud platform like GCP, AWS, or Azure
  • A solid foundation in statistics and experience designing and analyzing A/B tests
  • Excellent stakeholder management and communication skills, with a demonstrated ability to explain complex technical concepts to diverse audiences. Advanced English level
  • Direct experience in a FinTech, payments, or risk/fraud-focused role, particularly with exposure to credit or consumer lending
  • Experience working with traditional credit bureau data (Experian, Equifax, TransUnion) and alternative credit/identity data sources
  • Experience with Graph Neural Networks (GNNs) or graph analytics tools (e.g., Neo4j, NetworkX) to map complex fraud networks
  • Familiarity with consumer lending regulations (e.g., FCRA, ECOA) and their impact on machine learning model development
  • Hands-on MLOps experience (e.g., CI/CD for models, versioning, automated retraining)
  • Experience with Google Cloud Platform (GCP), especially Vertex AI
  • Spanish and/or Portuguese speaker

Benefits

  • Competitive salary
  • Initial stock options grant
  • Annual performance bonus
  • Health, dental, and vision plans
  • Remote work environment, although we have offices in Miami and México City and would love to work in hybrid model if you are up to it.
  • Continuous learning opportunities
  • Unlimited PTO
  • Paid parental leave
  • Empowering opportunities for growth in a dynamic entrepreneurial environment

Company Overview

  • Félix is ​​a chat-based platform that enables Latinos in the US to send money abroad. It was founded in 2020, and is headquartered in San Francisco, California, USA, with a workforce of 51-200 employees. Its website is https://www.felixpago.com.
  • Company H1B Sponsorship

  • Félix has a track record of offering H1B sponsorships, with 1 in 2026, 6 in 2025, 13 in 2024. Please note that this does not guarantee sponsorship for this specific role.
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