Scorecard Developer (Machine Learning Specialist) - Bengaluru

Posted 3 Days Ago
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Bengaluru, Bengaluru Urban, Karnataka, IND
In-Office
Mid level
Software
The Role
Develop and maintain credit scoring solutions: feature engineering, model development/tuning, PD-to-bad-rate calibrations, monitoring, and production-ready specifications in partnership with engineering and decisioning teams. Ensure stability, explainability, governance, and clear documentation for scoring and calibration outputs.
Summary Generated by Built In
Role purpose

As a Scorecard Developer, you’ll develop and maintain credit scoring components and associated calibrations that support approval and risk strategies across products and markets. You’ll focus on building high-quality features, ensuring scores are stable and explainable, and delivering robust PD-to-bad-rate calibrations that translate model outputs into decision-ready risk measures.

Key responsibilities

·        Develop and maintain scoring solutions and supporting artefacts used in credit decisioning (application and/or behavioural scoring, segmentation, risk signals).

·        Own feature engineering for scoring: create, test and document variables from bureau, application, transactional and repayment data; ensure stability, interpretability and data quality.

·        Contribute to model development and tuning using modern machine learning approaches where appropriate, ensuring outputs are robust, stable and suitable for decisioning.

·        Apply best-in-class machine learning practices for credit scoring, including disciplined hyperparameter optimisation, robust validation, and repeatable model selection workflows appropriate for production decisioning.

·        Define and maintain feature specifications for production (definitions, transformations, edge-case handling, missing value logic, consistency checks).

·        Produce PD / score calibrations to observed bad rates (overall and by segment), including calibration curves, stability tracking, and recalibration recommendations.

·        Support cut-off / limit strategy analysis using calibrated risk outputs (approval rate vs bad rate vs loss trade-offs).

·        Run ongoing monitoring: drift and stability of inputs/features, score distribution shifts, performance by segment and cohort/vintage, data pipeline health.

·        Partner with Engineering / Decisioning teams to operationalise scoring outputs and ensure reproducibility (versioning, back-testing, change control).

·        Maintain clear documentation suitable for internal review/audit (feature catalogue, calibration approach, monitoring packs, change logs).


RequirementsRequired experience and qualifications

·        2–4 years’ experience in credit scoring / risk modelling / decisioning analytics in a lender, bank, bureau, or fintech setting.

·        Strong SQL plus Python/R for feature engineering, analysis, monitoring and calibration work.

·        Practical experience with advanced machine learning concepts (e.g., ensemble methods, feature selection, hyperparameter tuning, cross-validation) and the discipline to balance predictive power with stability and governance needs.

·        Experience translating model outputs into business-ready risk measures via calibration and performance tracking.

·        Ability to produce implementation-ready specifications and work closely with engineering/decisioning stakeholders.

Nice to have

·        Exposure to multi-country portfolios and different bureau ecosystems.

·        Familiarity with model risk governance, validation support, and evidence pack preparation.

·        Experience with real-time/batch scoring pipelines and feature stores.

Personal attributes

·        Detail-oriented and quality-driven; enjoys building reliable, production-ready data logic.

·        Practical communicator who can translate analytics into deployable specs and monitoring.

·        Comfortable operating across analytics + implementation + monitoring.

Reporting line and location

·        Reports to: Credit Risk Modelling Lead / Scorecards Lead.

·        Location: Mumbai, India; collaboration with product and in-country credit risk teams.

Skills Required

  • 2-4 years experience in credit scoring, risk modelling, or decisioning analytics at a lender, bank, bureau, or fintech.
  • Strong SQL for data extraction and feature engineering.
  • Proficiency in Python or R for feature engineering, analysis, monitoring, and calibration.
  • Practical experience with advanced machine learning concepts (ensemble methods, feature selection, hyperparameter tuning, cross-validation).
  • Experience translating model outputs into calibrated, business-ready risk measures and performance tracking.
  • Ability to produce implementation-ready feature specifications and collaborate with engineering/decisioning stakeholders.
  • Exposure to multi-country portfolios and different bureau ecosystems.
  • Familiarity with model risk governance, validation support, and evidence pack preparation.
  • Experience with real-time and batch scoring pipelines and feature stores.
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The Company
300 Employees
Year Founded: 2016

What We Do

TymeX - A part of Tyme Group

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