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SmartStock

  • #Marketplace

Automated Inventory Forecasting System.

  • Machine Learning

Impact

  • The main goal is to simplify inventory forecasting, reduce manual data entry, and use the automated solution for effective inventory management.
  • Eventually, the solution will be integrated into the client’s services and can be monetized as part of their offerings.

Services we provided

Forecasting solution for
efficient inventory management

Tech Stack

Pytorch

Python

Streamlit

Pandas

Scikit-Learn

FastAPI

GitHub

Challenges and Solutions

🧐 Challenges

  • Сreate a working ML model integrating into the existing platform.
  • The system should be capable of handling a diverse range of SKUs with varying selling rates.
  • To ensure forecast accuracy and reliability.
  • To design a scalable solution for future growth.

💡 Solutions

  • Developed an automated system that uses data from a third-party company. This data includes info about product availability and sales rates in their store.
  • The system predicts future orders for each store by analyzing the current store inventory, inventory in SmartStock, and past sales history.

User flow

1. User uploads an Excel file with data.
2. System generates an Excel file with processed and forecasted columns: “Est days remaining”, ‘Need’ (calculated based on the current inventory and prior sales history); ‘Landed’, etc.
3. It enables store-specific future order forecasting.

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