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Databricks

Python (Django)

React

AWS S3

Gemini

Tech Stack

Client Profile

Industry

Automotive

Region

North America

Technology

Databricks

Overview

A leading automotive advisory firm that provides M&A and investment insights for the U.S. car dealership market struggled to leverage its raw data, coming from over 18,000 dealerships spanning decades. Each record had roughly 150 fields drawn from Polk, Helix, demographic and population datasets and other open sources and APIs. This had issues of inconsistent formats, missing common identifiers that prevented easy merging, and large gaps. These problems slowed extraction of actionable insights: full data refreshes took more than a week and blocked timely, strategic decisions such as dealership valuations.

 

To resolve the client's data challenges, Shorthills AI developed JumpIQ, an AI-powered platform that ingests and processes raw data from Polk, Helix, and other open APIs directly into Databricks. A robust data engineering pipeline was built for intelligent merging (using techniques like fuzzy matching and address normalization), cleaning, mapping, and formatting to create a unified “golden record” for each dealership. On this refined data foundation, advanced AI/ML models were deployed for predictive analytics, including revenue forecasting, sales efficiency, dealership valuation, and performance scoring—all accessible through a web-based dashboard offering detailed analytical reports and visual insights.

 

As a result, the client reduced data processing time from over a week to just 8 hours, gained a single clean and accurate database, and obtained significantly stronger predictive insights that enable faster, more confident strategic decisions.

Untitled design (1)_edited.jpg

Modernizing Leading U.S. Automotive M&A with Databricks—unifying data from 18,000+ dealerships into golden records to deliver explainable valuations, standardized forecasts, and 8-hour refreshes

Industry

Automotive

Region

North America

Technology

Databricks

Untitled design (1)_edited.jpg

Modernizing Leading U.S. Automotive M&A with Databricks—unifying data from 18,000+ dealerships into golden records to deliver explainable valuations, standardized forecasts, and 8-hour refreshes

Industry

Automotive

Region

North America

Technology

Databricks

Databricks

Python (Django)

React

AWS S3

Gemini

Tech Stack

Executive Summary

A leading U.S. automotive advisory firm struggled to turn decades of raw data from 18,000+ dealerships—spread across Polk, Helix, demographic datasets, and multiple APIs—into actionable insights. The fragmented and inconsistent data made full refreshes take over a week, delaying critical decisions like dealership valuations. Shorthills AI developed JumpIQ, an AI-powered platform that ingests this data into Databricks, creating unified “golden records” through intelligent cleaning, mapping, and merging. Advanced AI/ML models then deliver predictive analytics via a web dashboard with detailed reports and visual insights. The result: data processing dropped from over a week to 8 hours, the client gained a single accurate database, and predictive insights now support faster, more confident decisions.

Executive Summary

A leading U.S. automotive advisory firm struggled to turn decades of raw data from 18,000+ dealerships—spread across Polk, Helix, demographic datasets, and multiple APIs—into actionable insights. The fragmented and inconsistent data made full refreshes take over a week, delaying critical decisions like dealership valuations. Shorthills AI developed JumpIQ, an AI-powered platform that ingests this data into Databricks, creating unified “golden records” through intelligent cleaning, mapping, and merging. Advanced AI/ML models then deliver predictive analytics via a web dashboard with detailed reports and visual insights. The result: data processing dropped from over a week to 8 hours, the client gained a single accurate database, and predictive insights now support faster, more confident decisions.

Case Studies

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Modernizing tax-notice response at a leading professional services firm—LLM co-pilot cuts first drafts from ~3 days to 10–15 minutes at ~90% initial accuracy. 

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Modernizing Leading U.S. Automotive M&A with Databricks—unifying data from 18,000+ dealerships to deliver clear valuations and 8-hour data refreshes.

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Modernizing data operations at a leading automotive marketplace—100+ pipelines to run ~62% faster. 

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Modernizing OEM & dealer data for a multi-vertical vehicle marketplace—standardizing 400k+ models across 1,500 OEMs to eliminate uncategorized entries. 

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Modernizing digital retailing for automotive marketplaces—end-to-end online transaction engine with deep integrations lifts leads ~2.5× and powers 100+ dealers. 

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Modernizing enhancements for a global automotive marketplace—real-time, demand-driven engine cuts processing to ~15 minutes and lifts revenue. 

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Modernizing omnichannel retail analytics on Azure—streaming web + POS into a governed Databricks lakehouse to cut 4-hour processing to real-time. 

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Modernizing digital retailing for automotive marketplaces—end-to-end online transaction engine with deep integrations lifts leads ~2.5× and powers 100+ dealers. 

Read More

Case Studies

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Modernizing legal & tax knowledge discovery with AI at a leading professional services firm- 60% faster search results and 30% higher associate efficiency.

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Transforming global tax operations with an AI-driven analyzer at a leading professional services firm—classifying transactions to cut costs and expedite tax filings.

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Streamlining tax-notice response with an LLM co-pilot at a leading professional services firm—cutting first drafts from 3 days down to an efficient 10–15 minutes.

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Accelerating deep legal–tax research at a leading professional services firm with agentic AI—for ~80% faster turnaround, 5× productivity, and near-perfect automation.

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Modernizing leading U.S. automotive M&A with Databricks—unifying data from 18,000+ dealerships to deliver clear valuations and 8-hour data refreshes.

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Elevating purchase decisions through product research with AI—analyzing 18.6M+ reviews across 1,500+ categories to deliver granular, feature-specific product insights.

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Optimizing spare-parts management in the largest automotive manufacturer with PartsGenie—standardizing data and alternatives to cut overall inventory by 17.5%.

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Transforming a leading U.S. automotive marketplace’s web services unit—unifying systems into a high-performance platform for 60% faster sites and zero downtime.

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Automating insight-driven reporting for a leading U.S. automotive marketplace—delivering one-click Power BI decks in 5 minutes and cutting report-creation time by 95%.

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Streamlining data operations at a leading automotive marketplace—migrating 100+ pipelines to run efficiently and achieve a critical speed increase of ~62%.

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Unifying OEM & dealer data for a leading vehicle marketplace—extracting 400K+ models from 1,500 OEM websites and eliminating ~94% uncategorized vehicle listings.

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Pioneering digital retail for automotive marketplaces—launching an end-to-end online transaction engine that increases leads by 2.5x and powers 100+ dealers.

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Modernizing enhancements for a global automotive marketplace—implementing a real-time, demand-driven engine to cut processing time to ~15 minutes and lift revenue.

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Transforming omnichannel retail analytics on Azure—streaming web and POS data into a databricks lakehouse to cut 4-hour processing to real-time reporting.

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Modernizing healthcare analytics for a U.S. payer—leveraging an Azure Databricks lakehouse to unify fragmented data and achieve 40% lower storage cost.

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Modernizing course creation for a global business school with a hyper-personalized AI Tutor—auto-building slides, quizzes, and avatar lectures in 10–15 minutes.

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Modernizing contact center support for a leading consumer brand—answering agent queries for ~30% faster resolution times and achieving ~40% higher CSAT scores.

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Revolutionizing family-history capture for a UK healthcare provider—a patient-led chatbot cuts pedigree charting time by 93% and delivers the double clinician throughput.

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Digitizing archive of hand-drawn pedigree charts for a healthcare organization—using a custom ML solution to deliver 93% faster processing and 97% quicker retrieval.

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