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Ridhan Parvendhan

Data and ML engineer building credit-risk, payments, and analytics projects for fintech.


What I Build

  • Credit-risk scoring and feature-engineering pipelines
  • Payments and transaction analytics (batch and streaming)
  • End-to-end ML apps: data, model, dashboard, Docker, CI

Featured Projects

Project What it does Key tech
credit-risk-scorecard-engine WoE/IV binning and a PDO logistic scorecard vs XGBoost on the German Credit dataset, with PSI monitoring and SHAP/LIME Python, optbinning, XGBoost, SQL, Docker
clickhouse-payments-analytics Live payments-analytics stack: a producer streams events into ClickHouse, materialized-view rollups, a SQL anomaly view, three Superset dashboards ClickHouse, Superset, Python, Docker
payment-retry-ab-test A/B test analysis of a payment retry strategy: two-proportion z-test, confidence intervals, guardrails, segmentation Python, scipy, statsmodels, Streamlit
ai-ops-workflow-automation-platform FastAPI service that routes and escalates tickets through workflows and a LangGraph agent with approval gates and RBAC FastAPI, PostgreSQL, pgvector, Docker
pyspark-aml-transaction-analysis PySpark AML pipeline: window-function features, five typology rules, weighted risk scoring, XGBoost with SHAP and MLflow PySpark, XGBoost, SHAP, MLflow, Streamlit

Tech Stack

Python SQL ClickHouse Snowflake Power BI Docker AWS FastAPI scikit-learn


ridhanparvendhan@gmail.com

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