UK Petrol Stations Locations Dataset – Top 10 Petrol Station Brands

UK Petrol Stations Locations Dataset – Top 10 Petrol Station Brands

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Top 10 Petrol Station Chains Across the UK: Premium Multi-Brand Location Dataset

Unlock a complete, ready-to-use dataset featuring the leading Petrol Station brands in the UK. This expertly compiled Top Brands dataset consolidates all major Petrol Station chains in the UK, delivering a clean, standardised and analysis-ready collection of 7,594 locations. Perfect for businesses seeking high-quality data for market sizing, competitive landscape analysis, network optimisation, and strategic planning.

Last updated: 7 July 2026.

Dataset fields included in the CSV:

  • GUID
  • Title
  • Latitude
  • Longitude
  • Street No
  • Street
  • City
  • Town
  • Local authority
  • District
  • Postal Code
  • Address
  • Wheelchair
  • Popularity Score
  • Phone
  • Website
  • Opening hours

Brand distribution

  • Asda – 450 locations in the UK
  • bp – 1,375 locations in the UK
  • Esso – 1,537 locations in the UK
  • Gulf – 416 locations in the UK
  • JET – 378 locations in the UK
  • Morrisons – 426 locations in the UK
  • Sainsbury's – 318 locations in the UK
  • Shell – 1,197 locations in the UK
  • Tesco – 729 locations in the UK
  • Texaco – 768 locations in the UK

Petrol Stations distribution by Country

  • England: 6,292 petrol stations
  • Scotland: 711 petrol stations
  • Wales: 424 petrol stations
  • Northern Ireland: 154 petrol stations

Direct access after purchase of the complete locations dataset for the UK

Download the dataset immediately in a clean, analysis-ready CSV format. Ideal for geospatial analysis, competitor benchmarking, market studies, site planning, and retail location intelligence workflows.

Evaluate the dataset before purchase

A free sample is available for download, allowing you to inspect the structure, fields, and geospatial precision before purchasing the full dataset.

Need the data in another format?

We can deliver this dataset in alternative formats upon request (GeoJSON, Shapefile, Excel, PostgreSQL import files, etc.). Contact us at contact@geolocet.com.

Frequently Asked Questions

Q: Can I use this dataset for competitor benchmarking?

A: Yes. The dataset is frequently used to compare retail footprints, market density, and regional presence against competing brands.

Q: Can I combine this dataset with administrative boundaries?

A: Yes. The coordinates can be spatially joined with municipalities, census units, postal areas, and other administrative polygons.

Q: Can I analyze this dataset with AI tools?

A: Yes. The dataset is structured for compatibility with AI workflows including ChatGPT, Claude, Gemini, RAG pipelines, and Python-based analytics.

Q: Are the datasets suitable for machine learning workflows?

A: Yes. The structured tabular format and standardized coordinates make the datasets suitable for machine learning and predictive analytics applications.

Q: Can I use this dataset for proximity analysis?

A: Yes. The geocoded coordinates are suitable for drive-time analysis, catchment modeling, nearest-neighbor analysis, and accessibility studies.

Analyze this data with AI

Use these prompts with ChatGPT, Claude, or Gemini to extract strategic insights from this dataset:

  • "Analyze this this multi-brand dataset to identify underserved regions in the UK for potential market expansion."
  • "Measure average inter-store distance between this multi-brand locations across different regions of the UK."
  • "Using this this multi-brand data, find high-traffic retail corridors in the UK with low petrol stations density for competitive positioning."