A100, H100
Data Center GPUs
Up to 80GB
VRAM Available
< 5 min
Instance Launch
From $0.21/hr
Pay Per Hour
GPU Options for Deep Learning
Choose the right GPU based on your model size, training speed requirements, and budget.
Entry Level
— Learning and small experimentsRTX 2080 Ti
$0.21/hrGetting started
RTX 3080
$0.21/hrSmall models, tutorials
Professional
— Research and medium-scale trainingRTX 4090
$0.39/hrFast iteration, LoRA training
RTX 3090
$0.30/hrBudget training
A5000
$0.43/hrProfessional workloads
Enterprise
— Production training and large modelsA100 40GB
$0.63/hrLLM training, large batches
A100 80GB
$1.39/hrLarge models, distributed training
H100
$2.79/hrState-of-the-art training
Framework Support
| Framework | Version | CUDA | Notes |
|---|---|---|---|
| PyTorch | 2.2+ | 12.1 | Full support, recommended |
| TensorFlow | 2.15+ | 12.1 | Keras 3 compatible |
| JAX | 0.4+ | 12.1 | XLA optimized |
| Hugging Face | Latest | 12.1 | Transformers, Diffusers |
Deep Learning Use Cases
LLM Fine-tuning
Fine-tune large language models with LoRA, QLoRA, or full fine-tuning
Computer Vision
Train image classification, object detection, and segmentation models
Distributed Training
Multi-GPU and multi-node training for large-scale models
Model Inference
Deploy models for production inference at scale
Platform Features
Pre-installed CUDA
CUDA 12.1, cuDNN 8.9, NCCL ready
Docker Support
Run any container with GPU access
Persistent Storage
Keep your datasets and checkpoints
SSH & Jupyter
Full access via SSH or JupyterLab
NVLink Support
Fast multi-GPU communication
Spot Instances
Save up to 70% with interruptible
Frequently Asked Questions
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