Assessfy Industry Projects Lab Advanced 6 milestones 100 marks

Development of a Dynamic Pricing and Markdown Optimisation Engine for Indian Retailers

Industry: Retail & E-commerce Industry: Retail & E-commerce Function: Sales Type: Industry-vertical applied project Team: up to 4 Assessment: 6 milestones (100 marks)

Real-world project · AICTE-aligned · AI-graded · Audit-ready certificate

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Core skills
About this project

Objective: To design and implement a data-driven engine that dynamically optimises product pricing and markdowns to maximise revenue and inventory turnover for Indian retail and e-commerce businesses.

Indian retailers face intense price competition and high inventory costs, especially during festivals and end-of-season sales. Static pricing often leads to lost sales or excessive markdowns, impacting profitability in the highly dynamic Indian e-commerce landscape.

This project proposes building a dynamic pricing and markdown optimisation engine using historical sales, competitor pricing, and demand data. The team will leverage machine learning models to predict demand elasticity and optimise prices in real-time for key SKUs.

Deliverables include: a data pipeline integrating sources (e.g., POS data, Flipkart/Amazon APIs), demand forecasting models, optimisation algorithms, a user dashboard (in Power BI or Tableau), and actionable insights for pricing managers.

The solution will help retailers and e-commerce firms improve revenue realisation, reduce unsold inventory, and make data-driven pricing decisions tailored to the Indian consumer and competitive context.

Milestones
1. Problem Definition & Business Case
10 marks 18d
Deliverable: Clearly defined business problem, objectives, success metrics, and value proposition for an Indian retail/e-commerce firm; reviewed via written business case and mentor feedback.
2. Domain Research & Data Gathering
12 marks 22d
Deliverable: Research report on Indian retail pricing practices, competitor analysis, and data acquisition plan; reviewed via submission and Q&A with faculty.
3. Solution Design / Methodology
13 marks 20d
Deliverable: Documented approach for demand forecasting, price elasticity modelling, and optimisation framework; reviewed via design document and team presentation.
4. Build / Analysis & Implementation
30 marks 35d
Deliverable: Working prototype of the dynamic pricing engine (code, dashboard, data pipeline) with sample SKU data; reviewed via demonstration and code walkthrough.
5. Validation & Results
25 marks 30d
Deliverable: Analysis of engine performance, simulations (e.g., revenue lift, inventory reduction), and comparison with static pricing; reviewed via results report and validation dataset.
6. Final Report & Presentation
10 marks 15d
Deliverable: Comprehensive report and presentation covering methodology, findings, impact, and recommendations for business stakeholders; reviewed by academic panel and industry mentor.
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Skills you'll learn
Retail & E-commerceSalesRetail pricing and inventory management conceptsData cleaning and feature engineeringDemand forecasting and regression modellingOptimisation algorithms (linear programmingheuristics)Python programming and SQL queryingDashboard design (Power BI/Tableau)Business communication and presentation
Tools used
Python (pandasscikit-learnstatsmodels)MySQL or PostgreSQLPower BI or TableauExcel (for business case modelling)Indian retail datasets (e.g.Kagglepublic POS datasets)Flipkart/Amazon/BigBasket APIs (for scraping competitor prices)PuLP or Google OR-Tools (for optimisation)
Prerequisites
Basic statistics and probabilityData analysis with Python or ROperations management or supply chain basicsIntroduction to machine learning
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You'll earn — Certificate (PDF)

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