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Home/AI for Retail & eCommerce/Meridian Technologies
SaaS Case Study

Meridian Technologies

A demand forecasting model that reduced both stockouts and overstock.

+25%Feature Adoption
Meridian Technologies digitallyscaled
ClientMeridian Technologies
IndustrySaaS / Software
Timeline9 weeks
ServicesAI for Retail & eCommerce
The Challenge

Where things stood before

Meridian Technologies came to us with a problem that had been building for a while: a product experience that couldn't personalize or scale the way the market expected.

The problem was quietly getting more expensive to ignore every month it went unaddressed.

The Solution

What we built

Our approach focused on the root cause rather than the most visible symptom.

What we ultimately delivered was a demand forecasting model that reduced both stockouts and overstock, built specifically around what Meridian Technologies needed.

  • Structured so Meridian Technologies's own team could monitor and maintain it going forward
  • Built using Python and PyTorch for a stable, maintainable foundation
  • Delivered within a 9-week timeline without cutting scope
  • Designed around Meridian Technologies's actual data and workflow, not a generic template
Results

The impact, by the numbers

+25%
Feature Adoption
98.0%
Model Accuracy
-25%
Support Tickets
94.3%
Uptime
Tech Stack

Built with

PythonPyTorchBigQueryRedis

“What stood out was how grounded the whole approach was, not just chasing what's trendy. +25% feature adoption within a few months, and that's held up months later.”

HW
Hesper Whitlock

CTO, Meridian Technologies

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