Data Scientist
CG-VAK Software & Exports Ltd.
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Roles & Responsibilities Partner with Product to spot high-leverage ML opportunities tied to business metrics. Wrangle large structured and unstructured datasets; build reliable features and data contracts. Build and ship models to: Enhance customer experiences and personalization Boost revenue via pricing/discount optimization Power user-to-user discovery and ranking (matchmaking at scale) Detect and block fraud/risk in real time Score conversion/churn/acceptance propensity for targeted actions Collaborate with Engineering to productionize via APIs/CI/CD/Docker on AWS. Design and run A/B tests with guardrails. Build monitoring for model/data drift and business KPIs Ideal Candidate Strong Data Scientist/Machine Learnings/ AI Engineer Profile Mandatory (Experience 1) – Must have 3+ years of hands-on experience as a Data Scientist or Machine Learning Engineer building ML models Mandatory (Experience 2) – Must have strong expertise in Python with the ability to implement classical ML algorithms including linear regression, logistic regression, decision trees, gradient boosting, etc. Mandatory (Experience 3): Must have practical hands-on experience with Neural Network / Deep Learning models (TensorFlow / PyTorch preferred) Mandatory (Experience 4) – Must have hands-on experience in minimum 2+ usecaseds out of recommendation systems, image data, fraud/risk detection, price modelling, propensity models Mandatory (Experience 5) – Must have strong exposure to NLP, including text generation or text classification (Text G), embeddings, similarity models, user profiling, and feature extraction from unstructured text Mandatory (Experience 6) – Must have experience productionizing ML models through APIs/CI/CD/Docker and working on AWS or GCP environments Mandatory (Company) – Must be from product companies, Avoid candidates from financial domains (e.g., JPMorgan, banks, fintech) Mandatory (Note): The candidate must currently be based in Mumbai or be a native of Mumbai Skills: learning,ml,models,cd,aws,fraud,data,ci,docker