Arhelan Supermarket Locations Dataset – Poland
SKU: 41547295432

Arhelan Supermarket Locations Dataset – Poland

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Description

Arhelan Supermarket Locations Dataset – PolandQuick links: Dataset Summary Methodology Download Data Quality Regional Distribution Brand Bundle Related Datasets Use Cases FAQ Analyze with AI Arhelan is a Polish family owned retail chain originating from Bielsk Podlaski, primarily active in the northeastern part of the country. It is known for its strong regional presence and has recently partnered with the Eurocash Group to further its growth. There are 100 Arhelan Supermarkets as of 30 May 2026

Arhelan is a Polish family-owned retail chain originating from Bielsk Podlaski, primarily active in the northeastern part of the country. It is known for its strong regional presence and has recently partnered with the Eurocash Group to further its growth.

There are 100 Arhelan Supermarkets as of 30 May 2026 in Poland. This dataset is compiled and maintained by Geolocet and provides a complete, geocoded list of all Arhelan locations, including full address details, administrative divisions, and precise WGS84 latitude/longitude coordinates - structured for GIS, retail analytics, mapping, and AI/RAG workflows.

Dataset Summary

  • Dataset Coverage: 100 Arhelan supermarkets in Poland
  • Contents: Coordinates, addresses, postal codes, administrative divisions, contact details, and popularity scores
  • File Format: Fully geocoded CSV dataset (UTF-8)
  • Free Sample: Instantly accessible dataset to verify structure and data quality
  • Use Cases: Suitable for GIS, retail analytics, site selection, and AI/RAG workflows
  • Last Updated: 30 May 2026

Dataset Methodology:

This dataset is compiled from publicly available business listings, official company sources, and geospatial validation workflows. Automated quality checks and manual analyst reviews are applied to improve coordinate precision, address standardisation, duplicate detection, and overall analytical consistency.

It is periodically reviewed and updated to reflect known network changes, closures, relocations, and newly identified locations.

Dataset fields included in the CSV:

  • GUID
  • Title
  • Latitude
  • Longitude
  • Street No
  • Street
  • City
  • Admin_level_1
  • Admin_level_2
  • Municipality
  • Region
  • Population
  • Postal Code
  • Address
  • Wheelchair
  • Popularity Score
  • Phone
  • Website
  • Opening hours

Data Quality Scorecard

  • Geospatial Accuracy: 98%+ (Verified WGS84 Coordinates)
  • Contact Details (Phone)96%
  • Web Address99%
  • Opening Hours100%
  • Popularity Score100%

Data Preview: Sample geospatial records from the Arhelan dataset in Poland

ID Location Title Latitude Longitude Postal Code Full Address
324346a... Arhelan (Mońki) 53.403679 22.807189 19-101 21 Tysiąclecia, Mońki, 19-101, Powiat...
a1ec44e... Arhelan (Juchnowiec Górny) 53.015579 23.138797 16-061 1A Białostocka, Juchnowiec Górny, 16-...
0458937... Arhelan (Czyżew) 52.796443 22.331094 18-220 54a Szkolna, Czyżew, 18-220, Powiat w...
03246ae... Arhelan (Piasta II) 53.130456 23.184160 15-057 10A Bolesława Chrobrego, Białystok, 1...
bdfb226... Arhelan (Augustów) 53.854586 23.010146 16-300 10 Tytoniowa, Augustów, 16-300, Powia...

Note: Only a subset of the full dataset fields are displayed here. Download the free sample (option above) to view all fields and verify the data structure.

Why download from Geolocet?

  • Instant download - full dataset available immediately after purchase, no waiting, no manual fulfilment
  • Free sample first - verify structure, fields, and coordinate precision before you commit
  • Analysis-ready CSV - clean, standardised, and compatible with Excel, Python, QGIS, Power BI, and PostgreSQL out of the box
  • Regularly updated - last updated 30 May 2026

✅ Data looks right? Add to cart ↑ - or download the free sample first.

Regional Distribution Breakdown

Looking at the geographic distribution, the highest concentration of Arhelan locations in Poland is found in Podlaskie (83 sites, equivalent to 7.28 Arhelan supermarkets per 100,000 residents). This is followed by Mazowieckie (10 sites; 0.18 per 100,000) and Warmińsko-Mazurskie (4 sites; 0.3 per 100,000). From a market-penetration perspective, Podlaskie has the highest brand density at 7.28 locations per 100,000 people (population: 1,140,000), making it the most saturated region for Arhelan in Poland. By contrast, Lubelskie records only 0.15 locations per 100,000 residents (population: 1,995,000), indicating a potential white-space opportunity for network expansion or competitor analysis.

Also available for Poland

Brand bundle

Top 21 Grocery Brands in Poland - €400

All major chains in one standardised dataset. Best for competitive benchmarking, network analysis, and market sizing across the leading brands.

View Top Brands dataset →

Full market coverage

All Grocery Locations in Poland - complete POI dataset

Includes everything in the brand bundle plus independent operators, smaller chains, and local businesses not covered by the top brands. Best for full market mapping, territory planning, and white-space analysis.

View full POI 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 [email protected].

Who uses this data?

  • Franchise Expansion: Network development teams assessing market saturation and mapping open territories for new franchisees.
  • Store Closure & Relocation Strategy: Corporate teams optimizing existing footprints by analyzing underperforming regions.
  • Consumer Behavior Analytics: Researchers correlating local demographics, foot traffic data, and proximity to physical stores.
  • Urban Planning: City government agencies studying retail accessibility, neighborhood walkability, and commercial infrastructure.
  • Smart City Research: Academic researchers analyzing commercial density, urban growth patterns, and spatial economics.
  • Mobility Analysis: Transport consultants evaluating retail proximity to major transit corridors and parking infrastructure.
  • Last-Mile Delivery Routing: E-commerce and food-delivery planners optimizing localized courier routes and dispatch proximity.
  • Vendor Distribution: FMCG and wholesale suppliers identifying specific retail locations for direct-store-delivery (DSD) pitching.
  • CRM Data Enrichment: RevOps teams appending accurate, standardized contact details and coordinates to existing Salesforce/HubSpot records.

Frequently Asked Questions

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.

Q: Can this data be combined with demographics datasets?

A: Yes. Many customers combine these locations with demographics, income, mobility, and administrative boundary datasets for deeper spatial analysis.

Q: Is the dataset standardized for analytics workflows?

A: Yes. Address formatting, administrative areas, and geospatial fields are standardized to improve consistency across analytical environments.

Q: Can this dataset be imported into Power BI or Tableau?

A: Yes. The CSV structure is compatible with Power BI, Tableau, Looker Studio, and other business intelligence platforms.

Q: What coordinate reference system is used?

A: Coordinates are provided in the global WGS84 geographic coordinate system (EPSG:4326).

Analyze this data with AI

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

  • "Analyze this Arhelan dataset to identify underserved regions in Poland for potential market expansion."
  • "Analyze proximity between Arhelan locations and major highways, ring roads, or arterial transport corridors in Poland."
  • "Create a regional ranking of Arhelan coverage efficiency using population-to-store ratios across Poland."

Disclaimer: All brand logos and trademarks displayed are the property of their respective owners and are used strictly for identification purposes. This product consists of geospatial location data only; no images, logos, or trademark rights are included in the downloadable files.

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