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MyNextHire Pvt Ltd. - API TEST
Remote or Hybrid in Pimpri-Chinchwad, Maharashtra • 29d ago
Easy Apply
Full-time
$325000 - $1225000



Role: Data Scientist
Remote
Role & Responsibilities Overview:
· Develop machine learning models for various P&C insurance products elated to pricing, customer behavior, retention, price sensitivity, risk segmentation etc.
· Build, enhance, and maintain GLM-based pricing models (frequency, severity, pure premium) for insurance products
· Perform model comparison and benchmarking between traditional actuarial models and ML approaches
· Design and implement feature engineering pipelines using policy, claims, exposure, and behavioral data
· Conduct model validation, performance monitoring, and stability analysis over time
· Deploy and operationalize models using Databricks-based workflows
· Partner with actuarial, underwriting, and product teams to translate business problems into analytical solutions
· Document modeling methodology, assumptions, and results to support model governance and regulatory review
Candidate Profile:
· Location - Based out of US, (Cincinnati, Ohio Preferred)
· 7+ years of experience in P&C insurance analytics, pricing, or actuarial-adjacent Data Science roles with proficiency in advanced Machine Learning, NLP, DL techniques
· Hands-on, end-to-end ownership mindset from data preparation to model deployment
· Proven ability to work with large, complex insurance datasets with the ability to explain analytical results to non-technical stakeholders
· Strong understanding of P&C insurance pricing concepts, customer life cycle, rating variables, and risk segmentation
· Bachelors or Master''s degree in data science, economics, mathematics, computer science/engineering, operations research or related analytics areas
Technical skills:
· Machine Learning algorithms for tabular data (Gradient Boosting, Random Forests, XGBoost, LightGBM, NLP-Unstructured)
· GLM modeling expertise (Poisson, Gamma, Tweedie, Logistic)
· Python for data analysis and modeling (pandas, numpy, scikit-learn, statsmodels)
· Databricks / Spark (PySpark) for large-scale data transformation and feature engineering
· SQL for data extraction, transformation, and analytical queries
· Model explainability techniques (e.g., SHAP, partial dependence)
· Experience with model deployment, scoring pipelines, and performance monitoring
What we offer:


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