Machine Learning Engineer – Customer Churn Prediction Model, Built & Deployed
Бюджэт: $500.0
FIXED /
⭐ 0.00 (0)
Poland
machine-learning, python, data-science, artificial-intelligence
Preferred qualifications
- Experience: Expert
We need an ML engineer to build and deploy a customer churn prediction model for an e-commerce business. You'll take raw customer data, build a model that identifies customers likely to churn, and deploy it as a live API we can integrate into our workflows.
Scope of work:
Phase 1 — Data & Model Development
Clean and explore e-commerce customer data (purchase history, order frequency, recency, engagement signals, demographics — dataset to be shared on award)
Engineer features (RFM — recency/frequency/monetary — behavioral signals, etc.)
Train and evaluate churn classification models (e.g., XGBoost, Random Forest, Logistic Regression baseline)
Target: identify customers likely to churn in the next 30/60 days
Validate with appropriate metrics (F1, precision/recall, ROC-AUC — given churn is typically imbalanced) and document trade-offs
Phase 2 — Deployment
Package the trained model behind a REST API (FastAPI or Flask)
Containerize with Docker
Deploy to a cloud environment (Azure or AWS)
Set up logging so churn predictions can be tracked and re-evaluated over time
Phase 3 — Handoff
Clean, documented GitHub repo
Short write-up: architecture, retraining steps, redeployment steps
Live walkthrough call
Requirements:
Proven experience with churn/classification modeling on imbalanced datasets
Strong Python, scikit-learn/XGBoost, and API development skills
Docker and at least one cloud platform (Azure preferred)
Comfortable working independently with milestone check-ins
Nice to have:
Experience specifically with e-commerce or subscription churn
MLflow or similar for experiment tracking
Project type: Fixed-price, milestone-based (Phase 1 / Phase 2 / Phase 3)
Estimated duration: 3–4 weeks
To apply: Include a link to a past churn or classification project where you handled both modeling and deployment.
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