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Data Scientist - Logistics
Job in
Oregon, Dane County, Wisconsin, 53575, USA
Listed on 2026-07-13
Listing for:
Keka Technologies Private Limited
Full Time
position Listed on 2026-07-13
Job specializations:
-
IT/Tech
Machine Learning/ ML Engineer, Data Scientist, AI Engineer (Applied/Software), Data Engineering
Job Description & How to Apply Below
Responsibilities
- Lead the research, development, and implementation of advanced time series forecasting models to optimise logistics operations, including ETA prediction, preparation times, and demand forecasting.
- Design and implement optimization algorithms and solvers to improve logistics network efficiency, route planning, and resource allocation.
- Design and conduct rigorous experiments to test, validate, and benchmark models under various real‑world scenarios, ensuring robustness and accuracy.
- Fine‑tune, deploy, and monitor ML models and applications in production, maintaining retraining pipelines and ensuring model performance over time.
- Collaborate with ML engineers, backend engineers, researchers, and product engineers in a cross‑functional setting to identify key operational challenges and develop innovative data‑driven solutions.
- Conduct A/B tests and other experimentation techniques to evaluate model impact and drive continuous improvement across logistics KPIs.
- Translate complex analytical results into actionable business insights, presenting findings to senior leadership and stakeholders.
- Provide technical leadership in data science, mentoring junior team members and driving best practices in modelling, experimentation, and code quality.
- Stay up‑to‑date with the latest advancements in AI, ML, and operations research, integrating cutting‑edge techniques into logistics solutions.
- MSc in Data Science, Statistics, Applied Mathematics, Computer Science, or a related field.
- Nice to Have:
PhD in Data Science, Statistics, Computer Science, Electrical Engineering, or equivalent industrial experience. - 5+ years of experience in data science, machine learning, or statistical modelling, with a strong focus on time series forecasting and/or optimisation problems.
- Extensive hands‑on experience with time series forecasting methods (e.g., ARIMA, Prophet, LightGBM, TFT, DeepAR, N‑BEATS) and regression/classification models.
- Practical experience with optimisation techniques and solvers (e.g., linear programming, mixed‑integer programming, heuristic methods, OR‑Tools, PuLP, or similar).
- Proficiency in Python, including libraries such as Pandas, Num Py, Scikit‑learn, Optuna, LightGBM, Tensor Flow, or PyTorch.
- Practical experience in developing and deploying ML models at scale, including monitoring and retraining pipelines.
- Practical experience in A/B testing and other experimentation techniques.
- Strong experience handling large datasets and proficiency with SQL databases (Big Query, Redash or others).
- Experience with cloud platforms such as AWS (ECS, S3, Lambda, Step Functions), GCP (Big Query, VertexAI), and/or Databricks for ML model development and deployment.
- Proven experience in the delivery and logistics industry, with a strong understanding of its operational challenges and optimisation opportunities (a plus).
- Global Vibes – Collaborate with a worldwide crew.
- Brain Boosters – Learning budgets, access to courses, and tools for your growth.
- Flexible Time Off – We take recharging seriously. Generous leave and wellness policies.
- Agile Everything – Scrum isn’t a buzzword here. It’s how we roll, from product to ops.
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