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On Shelf Availability: 3-Wk Pilot Implementation
Automated ML based predictive alerts around stock-outs, low inventory, off scan anomalies etc. to reduce lost sales opportunities
Objective: Develop a solution using ML based diagnostic and predictive analytics that identifies root-causes of stock-outs and off-sales behavior and generates custom alerts to take preemptive action against lost opportunity.
Key Challenges Addressed:
How do we address your challenges:
Pilot Outcome: Scope: 1 country; 1 retailer; ~500 stores; 2-3 SKUs
One time alert list generated based on sales behavior by SKUs
Implementation Plan The break-up of the implementation plan is as below: Week 1 - Data discovery and data ingestion Week 2 - OSA Solution building - Exploratory data analysis followed by ML modelling to identify OSA levels in the stores Week 3 - Alerts generated with required granularity and prioritization.
This implementation uses the following native Azure components: ADF pipelines ADLS Gen 2 Azure SQL database Azure ML Power BI