Global Infrastructure · GPU Clusters

Global AI Datacenter Database

Track the world's largest GPU clusters powering frontier AI: 786 datacenters from xAI, Meta, Microsoft, Google and Tesla, with live GPU counts, H100-equivalent compute, and megawatts online and planned.

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Total Datacenters
786
609 existing · 171 planned
Total GPUs
9.1M
Across all clusters
H100 Equivalent
132.2M
Normalised compute
Total Power
56.6K MW
≈ 57 GW

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Datacenters (50)

NameH100 Equiv
xAI 5 year plan 50.0M
Abu Dhabi UAE/USA 5GW Campus Phase 2 20.3M
Meta $200B Campus Rumor 20.3M
DataVolt Neom 1.5 GW Phase 2 5.1M
OpenAI Stargate Abilene Oracle OCI Supercluster Phase 3 5.1M
South Korea Planned 3GW Cluster 5.1M
Meta Louisiana Datacenter 5.1M
Stargate UAE Phase 2 2.5M
"OpenAI/Microsoft Mt Pleasant, Wisconsin Phase 2" 1.8M
HUMAIN Saudi Arabia Phase 2 1.5M
xAI Colossus 2 Memphis Phase 2 1.4M
Fluidstack France Gigawatt Campus 1.3M
Meta Prometheus New Albany 1.3M
Reliance Industries Supercomputer 1.1M
OpenAI Stargate Abilene Oracle OCI Supercluster Phase 2 758.0K
OpenAI/Microsoft Atlanta 682.2K
DataVolt Neom 1.5 GW Phase 1 510.4K
Applied Digital Ellendale Possible Phase 3 454.8K
Sesterce Grand Est France B 379.0K
Sesterce Grand Est France A 379.0K
Nebius New Jersey 379.0K
"OpenAI/Microsoft Mt Pleasant, Wisconsin Phase 1" 379.0K
Sesterce Southern France 250MW 303.2K
Oracle OCI Supercluster B200s 298.0K
xAI Colossus 2 Memphis Phase 1 277.9K
Applied Digital CoreWeave Ellendale Phase 2 277.9K
xAI Colossus Memphis Phase 3 275.8K
CoreWeave Denton GB200s OpenAI/Microsoft 252.7K
Middle East 100k Cluster 252.7K
OpenAI Stargate Abilene Oracle OCI Supercluster Phase 1 252.7K
Stargate UAE Phase 1 252.7K
xAI Colossus Memphis Phase 2 200.0K
SK Group AWS Uslan Phase 2 151.6K
Project Rainier 134.8K
Nscale Loughton 113.7K
Applied Digital CoreWeave Ellendale Phase 1 113.7K
EU AI Gigafactory #5 101.1K
EU AI Gigafactory #4 101.1K
EU AI Gigafactory #3 101.1K
EU AI Gigafactory #2 101.1K
EU AI Gigafactory #1 101.1K
Sesterce Valence 101.1K
CoreWeave Muskogee 101.1K
Tesla Cortex Phase 3 100.0K
xAI Colossus Memphis Phase 1 100.0K
Meta 100k 100.0K
OpenAI/Microsoft Goodyear Arizona 100.0K
Anonymized Chinese System 100.0K
together.ai 36k GB200s 91.0K
Oracle OCI Supercluster H200s 65.5K
Showing 1–50 of 786 datacenters
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What Is an AI Datacenter?

An AI datacenter is a facility purpose-built to house and power dense clusters of GPUs for training and serving artificial intelligence. Unlike a traditional datacenter tuned for storage and web traffic, these sites are engineered around high-bandwidth GPU racks, liquid cooling, and the enormous electrical supply that modern accelerators demand — often tens or hundreds of megawatts for a single cluster. We track them all in one place, normalised to H100-equivalent compute so different hardware can be compared on a single scale.

The AI Compute Race

Frontier AI now runs on the largest computers ever built. From xAI's Colossus in Memphis to Meta's 100K-GPU clusters, labs are racing to deploy compute faster than the grid can supply power. Tracking who is building where — and how much capacity is online versus planned — reveals where the industry is heading. Explore the systems that fill these racks, or compare the GPUs inside them.

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Browse by Country

Explore AI datacenters by region:

The Largest Cluster

xAI's Colossus in Memphis leads the race at roughly 275K H100-equivalent GPUs.

View Colossus

Frequently Asked Questions

What is an AI datacenter?

A facility built to house and power large clusters of GPUs for training and serving AI models. Unlike a traditional datacenter, it is engineered around dense GPU racks, high-bandwidth networking, and the enormous power and cooling those accelerators demand, often tens or hundreds of megawatts for a single site.

What does "H100 equivalent" mean?

A normalised measure of compute that expresses a cluster's total AI performance in units of NVIDIA H100 GPUs. Because clusters mix different chips, converting everything to H100 equivalents lets you compare the real compute capacity of datacenters built on different hardware on a single scale.

Which companies operate the largest AI datacenters?

The largest clusters are operated by well-funded labs and hyperscalers including xAI, Meta, Microsoft, Google, Amazon, and Tesla, ranging from tens of thousands to hundreds of thousands of H100-equivalent GPUs.

How much power does an AI datacenter use?

Power draw scales with GPU count. A modern flagship cluster can require anywhere from tens of megawatts to over a gigawatt at full build-out, comparable to a small city. Power capacity is now one of the primary constraints on how fast new AI compute can be deployed.

Datacenter data from Epoch AI, licensed under CC-BY 4.0.

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