Compute Comparison

GMI Cloud

Specialist Cloud

GMI Cloud provides H100 and H200 GPU clusters across US and APAC regions with NVLink interconnects for high-bandwidth distributed AI training and large-scale LLM inference. Competitive on-demand pricing and large cluster support make it a strong option for APAC-based AI teams that need flagship NVIDIA hardware without the latency of US-only providers. A reliable specialist GPU cloud for organizations running multi-node training workloads across North America and Asia-Pacific.

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Cheapest On-Demand

$1.13/hr

Cheapest Spot

GPU Listings

3

Billing

On-demand

Performance Benchmarks

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Provider Info

Headquarters

United States

Founded

2023

Regions

US, APAC

Min Commitment

None

Support

Standard

Strengths

  • Competitive H100/H200 pricing
  • APAC region availability
  • High-bandwidth interconnects
  • Large cluster support

Limitations

  • Small provider — limited scale for very large clusters
  • Less mature platform vs CoreWeave or Lambda
  • Limited ecosystem integrations

Best For

Large-scale trainingAPAC-based teamsH200 workloads

Full GPU Catalog

GPU ModelvRAMOn-DemandSpotAvailabilityRegion
A100 80GB80 GB$1.13HighUS/APAC
H100 80GB80 GB$2.45HighUS/APAC
H200 141GB141 GB$3.84MedUS/APAC

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GMI Cloud GPU pricing overview

GMI Cloud is a specialist GPU cloud provider headquartered in United States. GMI Cloud provides H100 and H200 GPU clusters across US and APAC regions with NVLink interconnects for high-bandwidth distributed AI training and large-scale LLM inference. Competitive on-demand pricing and large cluster support make it a strong option for APAC-based AI teams that need flagship NVIDIA hardware without the latency of US-only providers. A reliable specialist GPU cloud for organizations running multi-node training workloads across North America and Asia-Pacific. Billing is On-demand with a minimum commitment of None. Available regions include US, APAC. On-demand GPU instances can be provisioned in minutes with no upfront cost, making GMI Cloud suitable for both short-duration experiments and sustained production workloads.

GMI Cloud vs other GPU providers

GMI Cloud competes with providers including Lambda Labs, CoreWeave, RunPod, Paperspace, Vast.ai, and the major hyperscalers (AWS, Google Cloud, Azure) for GPU compute workloads spanning LLM training, fine-tuning, and inference serving. Key differentiators include: Competitive H100/H200 pricing; APAC region availability; High-bandwidth interconnects. Use the side-by-side comparison tool above to see GMI Cloud pricing against any other provider across shared GPU models. For a broader market view, the live GPU prices table shows all 3 GMI Cloud listings alongside 94+ providers in a single sortable view.

Best use cases for GMI Cloud

GMI Cloud is best suited for: Large-scale training, APAC-based teams, H200 workloads. Support tiers range from Standard, making it viable for both individual researchers and enterprise teams with SLA requirements. There are currently 3 active GPU listings on GMI Cloud, covering H100 80GB, H200 141GB, A100 80GB. For workloads requiring the highest single-GPU throughput, H100 SXM5 instances with NVLink interconnect deliver the best performance per dollar at scale. For cost-sensitive fine-tuning or inference of models up to 13B parameters, A100 40GB or RTX 4090 instances typically offer the best value.

GMI Cloud billing model and cost structure

GMI Cloud uses On-demand pricing. On-demand instances are billed per second or per hour depending on the instance type, with no termination fees. Spot pricing is not currently available on this provider — all instances are on-demand. Reserved instance pricing, where available, can reduce costs by 30–60% for predictable long-running workloads. Always compare the effective hourly rate including egress, storage, and networking costs when evaluating total cost of ownership across providers.

Choosing the right GPU on GMI Cloud

GPU selection depends on model size, precision, and whether your workload is compute-bound or memory-bandwidth-bound. For LLM training above 30B parameters, H100 80GB SXM5 instances with NVLink are the standard choice — the 3,350 GB/s HBM3 bandwidth and 989 TFLOPS FP16 throughput make them 2–2.5× faster than A100 for transformer workloads. For inference of 7B–13B models in FP16 or BF16, A100 40GB offers the best cost-per-token on most providers. RTX 4090 instances are ideal for fine-tuning, prototyping, and quantized inference (INT4/INT8) of models up to 70B. Read the H100 vs A100 guide or the GPU benchmarks for ML guide for a full breakdown.

How GMI Cloud pricing data is collected

Prices shown are sourced from GMI Cloud's public pricing API or pricing page and refreshed every 15 minutes. On-demand rates reflect the current list price for a single GPU instance in the cheapest available region. Spot prices, where available, reflect interruptible instance rates at the time of the last snapshot. All prices are in USD per hour. Daily snapshots are retained for 90 days and visualised in the GPU price history charts — useful for identifying seasonal pricing patterns and evaluating whether current rates are above or below the 30-day average.

Evaluating managed LLM inference APIs as an alternative to self-hosted GPU compute? Compare live LLM token prices across OpenAI, Anthropic, Google, Groq, and 14+ other providers. The cheapest GPU cloud guide covers the break-even analysis between self-hosted and managed inference at different request volumes.

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On-demand from $1.13/hr — 3 GPU configurations available. On-demand billing.

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