Senior Data Scientist
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Aroha Technologies
Austin, TX (In Person)
Full-Time
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Job Description
Role:
Senior Data Scientist Location:
Tampa, FL /Austin, TX, Toronto, Canada Onsite Employment Type:
Contract/Fulltime Role Summary- (To be filled by Practice /DO) As Lead Data Scientist, you will spearhead the end-to-end development of sales forecasting and demand sensing models for CPG portfolios on Databricks (Azure).
- and you are comfortable translating complex model outputs into clear business recommendations. Primary (Must have skills) 3+ years of experience in Databricks in production 5+ years of experience in Python
- pandas, PySpark, scikit-learn 5+ years of experience with Azure ML or Azure ecosystem 3+ years of experience in MLflow or equivalent experiment tracking tool 5+ years of experience in Supervised, unspervised machine learning algorithms, forecasting and inventory optimization 5+ yeras of experience in deep learning algorithms applying to solve forecasting, regression and classification problems 3+ years of experience in buidling ML models in CPG industry What You'll Do/Job Description of Role• (RNR) Lead end-to-end sales forecasting model development•from data sourcing and feature engineering through model training, validation, and productionisation on Databricks (Azure).
- at SKU, category, and regional hierarchy levels
- incorporating POS data, promotional calendars, seasonality indices, and external signals (macroeconomic, weather). Apply CPG domain knowledge
- to model promotional uplift, new product introduction curves, product cannibalization, and retailer sell-in/sell-out dynamics into ML features and targets. Operationalise ML models using MLflow on Databricks
- manage the model registry, version control experiments, automate retraining schedules, and configure drift monitoring alerts. Collaborate with commercial and supply chain teams
- to translate forecast outputs into inventory recommendations, production planning inputs, and revenue growth strategies. Define and enforce data science best practices
- modelling standards, experiment documentation, code review guidelines, and reproducibility requirements across the team. Mentor junior data scientists
- conduct code reviews, lead knowledge-sharing sessions, support career development, and build a high-performance data science culture. Communicate model insights and forecast accuracy
- to senior stakeholders through dashboards, executive briefings, and written reports
- making complex model behaviour accessible to business audiences. Drive continuous model improvement
- benchmark new algorithms, evaluate AutoML approaches, and run controlled experiments to improve MAPE, bias, and coverage metrics. Partner with data and platform engineers
- to ensure feature pipelines on Azure Data Lake / Delta Lake are reliable, scalable, and aligned with model refresh cadence requirements.
- key for CPG forecast decomposition Team Leadership & Mentoring Guide junior data scientists, run code reviews, define modelling standards, and represent the data science function in cross-functional forums.
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