Job Description
Job Summary
The Senior Data Scientist designs and deploysstatistical, forecasting, and machine learning solutionsto solve complex business problems. This role works with cross-functional teams to buildproduction-ready models, generate actionable insights, and improve planning and decision-making at scale.
The role requires strong expertise instatistics, time series analysis, probabilistic forecasting, machine learning, and Google Cloud Platform (GCP).
Responsibilities
Statistical Modeling Forecasting
Build and deploystatistical and probabilistic forecasting modelsfor demand, capacity, and trend analysis
Applytime series methodsincluding regression-based models, ARIMA/SARIMA, and state-space models
Define modeling assumptions, forecast uncertainty, and evaluation methods
Machine Learning Predictive Modeling
Build and deploymachine learning modelsfor forecasting and prediction, including regression, tree-based models, gradient boosting and neural networks
Selectstatistical or ML approachesbased on accuracy, interpretability, robustness, and operational needs
Develop features and run experiments to improve model performance
MLOps Production Deployment
Own themodel lifecycle, including development, backtesting, deployment, monitoring, and retraining
Implementmodel monitoring, performance tracking, and data drift detection
Ensure models areversioned, reproducible, and production-ready
Data Engineering Modeling
Perform exploratory data analysis, feature engineering, and hypothesis testing on large, complex datasets
Identify data requirements for forecasting and predictive modeling, including key inputs, data gaps, and quality needs
Work with big data technologies and distributed data processing to support scalable modeling
Partner with data engineering teams to ensure data quality, availability, and efficient data pipelines
Visualization Insights
Create visualizations to communicateforecasts, trends, and model outputs
Translate model results intoactionable insightsfor business and operational stakeholders
Collaboration Stakeholder Engagement
Work closely with product managers, engineers, and business teams to define forecasting and analytics requirements
Communicate modeling approaches, assumptions, and results clearly to technical and non-technical stakeholders
Qualifications
7+ years of experiencein data science, applied statistics, or machine learning
Strong foundation instatisticsand experience applying statistical methods in production
Proven experience withtime series analysis and probabilistic forecasting
Hands-on experience withmachine learning modelssuch as regression, boosting, and neural networks
Experience owningproduction data science models, including deployment and monitoring
Experience working with large datasets and using SQL and Python for analytical and modeling workflows
Proficiency inPythonand common DS/ML libraries (e.g., pandas, NumPy, scikit-learn, statsmodels, PyTorch/TensorFlow)
Experience working onGoogle Cloud Platform (GCP)
Bachelors or Masters degree inComputer Science, Statistics, Mathematics, Data Science, or a related quantitative field
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