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Data Science in Supply Chain Management

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Unit 01 Data Science In Supply Chain Management

Introduction to the application of data science in supply chain management, including demand forecasting, procurement analytics, inventory optimization, warehouse management, logistics planning, transportation optimization, market intelligence, price forecasting, risk analysis, and decision support using statistical techniques, machine learning, and artificial intelligence. Practical case studies cover data-driven demand forecasting and supply chain optimization for fresh fruits and vegetables, warehouse inventory optimization for agricultural commodities, transportation route analysis for efficient agricultural produce distribution, and market price analysis for efficient agricultural supply planning.

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Data Science in Supply Chain Management

This course introduces the fundamentals of Data Science, covering the complete data science lifecycle, including data collection, pre-processing, exploratory data analysis (EDA), statistical analysis, data visualization, and machine learning techniques. Learners will explore methods for acquiring, processing, analyzing, and interpreting data to generate meaningful insights and support evidence-based decision-making.

The course emphasizes the application of Data Science in Agriculture and Allied Sciences, including agrometeorology, plant breeding and genetics, animal breeding and genetics, agronomy, supply chain management, post-harvest management, and agricultural market studies. Through practical workflows, real-world case studies, and success stories, learners will understand how predictive analytics, classification, regression, clustering, and visualization techniques are used to solve agricultural challenges. The course also introduces emerging technologies such as Big Data, IoT-enabled data acquisition, and Artificial Intelligence to demonstrate the growing role of Data Science in sustainable agriculture and modern digital ecosystems.

Learning Objectives

By the end of the course, you will be able to:

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