ML Engineer (Bengaluru)

ML Engineer (Bengaluru)

09 Sep
|
Weekday AI
|
Bengaluru

09 Sep

Weekday AI

Bengaluru

This role is for one of Weekday’s clients

Min Experience: 2+ years

Location: Bengaluru

JobType: full-time

Key Responsibilities1. Risk Modeling & Business Impact

Build and deploy models for:

Probability of Default (PD)

Loss Given Default (LGD)

Exposure at Default (EAD)

Fraud detection and capture rate optimization

Translate business problems into measurable ML objectives and target variables

Drive improvements in risk decisioning, underwriting, and collections strategies

- Machine Learning & Model Development

Develop scalable ML models using:

LightGBM, XGBoost, CatBoost

Random Forest, CART, Logistic Regression

Work extensively on tabular datasets (structured financial data)

Build ensemble and stacking models for improved performance

- Feature Engineering & Model Evaluation

Perform advanced feature engineering using:

Weight of Evidence (WoE)

Information Value (IV)

Variable Clustering (VarClus)

Evaluate models using

AUC-ROC / Gini coefficient

F1 Score, Precision, Recall

Handle class imbalance using

SMOTE

Class weighting

Threshold tuning

- Model Optimization & Explainability

Optimize models using

Grid Search / Random Search





Bayesian Optimization (Optuna preferred)

Ensure model interpretability using

SHAP values

LIME

Partial dependence plots

Communicate model insights effectively to business and risk stakeholders
- Data Engineering & Pipeline Development

Process large-scale datasets using:

SQL (advanced level mandatory)

PySpark / Hive / distributed systems

Build robust data pipelines for model training and deployment

Work with large transactional or bureau datasets

Required Skills & Experience :Must-Have

- 2 - 5 years of relevant experience in credit risk / fraud analytics
- Robust hands-on experience with:
- Python (Pandas, Scikit-learn)
- SQL (complex queries, optimization)
- Expertise in tree-based models (XGBoost/LightGBM)
- Experience with imbalanced datasets in financial use cases
- Strong understanding of model evaluation metrics beyond accuracy

Good to Have :Experience with:

PySpark / distributed computing

Credit bureau / transactional datasets

Fintech / NBFC / banking domain

Good-to-have skills

Machine Learning, Credit Risk, Credit Risk Management

📌 ML Engineer (Bengaluru)
🏢 Weekday AI
📍 Bengaluru

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