Credit Scoring Data Scientist

Posted 5 Days Ago
3 Locations
Remote
Junior
Fintech • Financial Services
The Role
Build and own application and behavioral credit scoring models across the full lifecycle: data exploration, feature engineering, model development, validation, deployment, and production monitoring. Validate using AUC/KS/Gini/PSI, measure business impact (NPV, backtesting), translate models into decision-engine specs, and collaborate with product, engineering, and risk to refine approval strategies and portfolio performance.
Summary Generated by Built In

As a Data Scientist in our Credit Risk team, you’ll work on improving both application scoring (to enhance onboarding decisions) and behavioral scoring (to increase portfolio profitability). You’ll be responsible for the full modeling cycle: from exploring data and identifying meaningful patterns, to building and validating models, assessing their business impact, writing clear implementation requirements, and monitoring production performance.

The role goes beyond modeling - you’ll collaborate with product managers, analysts, and engineers to understand business context, generate and test hypotheses, and continuously refine our decision-making strategy. We operate in a modern, data-driven environment where models and statistics drive key decisions, and the infrastructure supports fast iteration and deployment.

Each task is evaluated through the lens of business value - there’s no such thing as work “for the drawer.” This is a high-responsibility, high-impact role for someone ready to influence strategy, own results, and gain deep exposure to credit data, user behavior, and market dynamics.

Your Future Responsibilities Await:
  • Build credit scoring models (application & behavioral) from scratch

  • Own the full modeling lifecycle: data exploration → feature engineering → model development → validation → deployment → monitoring

  • Validate models using AUC, KS, Gini, PSI, and bad rate

  • Monitor model performance in production and initiate recalibration or retraining when needed

  • Evaluate model impact using NPV, backtesting, and real portfolio performance

  • Translate models into implementation-ready specs for decision engines

  • Work closely with product and risk to adjust approval strategies, cut-offs, and pricing

  • Contribute to credit policy and risk strategy evolution, not just model development

  • Take full ownership of your models - from raw data to business impact

  • Operate with a strong focus on real-world performance, not offline metrics
    What we expect from candidate:

  • 2+ years of hands-on experience specifically in credit risk modeling (not generic data science)

  • Proven experience building or validating credit scoring models:

    • Application and/or behavioral scoring

  • Strong understanding of:

    • PD modeling

    • AUC / KS / Gini

    • Stability metrics (PSI, CSI)

  • Hands-on experience with the full model lifecycle in production

  • Ability to build models from scratch, not only maintain existing ones

  • Strong Python (pandas, scikit-learn) and SQL skills

  • Experience working with lending or credit products (loans, credit cards, BNPL, etc.)

  • Experience translating models into production / decision engine logic

  • Understanding of business impact evaluation (NPV, backtesting, portfolio metrics)

  • Experience working with real lending data (e.g. bureau, transactional, credit history)

  • Ability to work cross-functionally with product, engineering, and risk teams

  • Willingness to relocate to Manila HQ is a strong advantage

Skills Required

  • 2+ years of hands-on experience specifically in credit risk modeling
  • Proven experience building or validating credit scoring models (application and/or behavioral scoring)
  • Strong understanding of PD modeling
  • Knowledge of AUC, KS, Gini
  • Knowledge of stability metrics (PSI, CSI)
  • Hands-on experience with the full model lifecycle in production (deployment and monitoring)
  • Ability to build models from scratch
  • Strong Python skills (pandas, scikit-learn)
  • Strong SQL skills
  • Experience working with lending or credit products (loans, credit cards, BNPL, etc.)
  • Experience translating models into production / decision engine logic
  • Understanding of business impact evaluation (NPV, backtesting, portfolio metrics)
  • Experience working with real lending data (bureau, transactional, credit history)
  • Ability to work cross-functionally with product, engineering, and risk teams
  • Willingness to relocate to Manila HQ
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The Company
1,189 Employees
Year Founded: 2022

What We Do

Salmon Group Ltd is a financial technology company serving Filipino consumers with modern, inclusive financial services. Its platform combines technology, product design, security, data analytics and customer care to make finance easier to access. Salmon offers consumer-focused products including short-term loans and digital banking services, with the broader mission of improving convenience, affordability and financial inclusion while operating securely around the clock.

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