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Report abuseChemical Engineer turned GA4 Data Integrity Auditor | Process Control, Mass Balance & First-Party SST
Most e‑commerce and SaaS companies lose 20–40% of their conversion data due to broken tracking and client‑side signal loss. But insights are only as good as the data infrastructure underneath them.
I don't approach tracking as a marketer; I approach it as a process engineer. I apply Mass Balance and Failure Mode Analysis (FMEA) to analytics infrastructure to find where the pipeline leaks and why — and now extend that into first‑party Server‑Side Tagging (SST) on GCP App Engine.
GA4 Google Tag Manager Shopify BigQuery SQL Python Looker Studio Scikit-learn Tableau GCP App Engine Server-Side Tagging
GA4 tracking audit delivering a 47-point diagnostic matrix, developer-ready fix tickets, and a Looker Studio QA monitoring dashboard.
Zero-loss GA4 ↔ Shopify reconciliation and first-party Server-Side Tagging (SST) proxy on GCP App Engine — applying Chemical Engineering FMEA and mass-balance principles to detect phantom revenue a…
Python
Heuristic + ML churn risk engine using the IBM Telco benchmark dataset. SQL safety-factor scoring, Tableau control panel, Random Forest modeling, and $249K modeled monthly revenue exposure.
Jupyter Notebook 1
30-query DoE stress-test of an enterprise NL2SQL semantic platform. Diagnosed 16 architectural failures across 5 bug classes using BigQuery ground-truth validation.
RFM segmentation and market basket analysis on 540K+ transactions identifying £350K revenue opportunity. SQL, R, Tableau.
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