NVIDIA

AI computing platform providing GPUs, software, and infrastructure for training and deploying AI models across industries

Verified API available ~2.4M monthly visits
Quick facts
What is it AI computing platform providing GPUs, software, and infrastructure for training and deploying AI models across industries
Pricing Paid
Free tier No
Platform API
API Yes
Best for training large language models and neural networks, running real-time inference for applications like speech recognition and recommendation engines
Domain registered 1993

Data updated Sept. 19, 2026

What does NVIDIA do?

NVIDIA is not a single app you download—it's the full hardware and software stack that powers many of the AI tools you use. This page shows how NVIDIA delivers the infrastructure behind modern AI: supercomputers, data-center GPUs (like the new Vera Rubin), and software libraries such as CUDA-X. Whether it's training large language models, running real-time recommendation systems, or simulating climate change, NVIDIA provides the computing muscle. The company positions itself as the backbone for enterprise AI, offering everything from chips to developer toolkits.

What makes NVIDIA stand out is the breadth of its ecosystem. You get hardware (GPUs, CPUs, networking) plus a software layer that includes AI models (like Nemotron for reasoning), libraries for data science (RAPIDS, Merlin), and platforms for robotics (Isaac) and digital twins (Omniverse). The page highlights how these components work together: a supercomputer like JUPITER runs on Grace Hopper processors, while CUDA-X microservices accelerate scientific research. For developers, NVIDIA offers documentation, SDKs, and a technical blog—so you can build directly on their technology.

NVIDIA is best suited for data scientists, researchers, and engineering teams who need high-performance computing for AI workloads. Use cases include training custom models, running inference at scale, and accelerating scientific simulations like molecular design or astrophysics. If you're building a serious AI system—not just experimenting—NVIDIA's stack gives you the horsepower to get it done.

#ai agents#ai computing#cuda#data analytics#deep learning#gpu acceleration#hpc#machine learning

Key features

What makes it stand out
01
High-performance GPUs (e.g., Vera Rubin) for training and inference
02
CUDA-X libraries and SDKs to accelerate AI and HPC workloads
03
Nemotron reasoning models for complex agentic tasks
04
Merlin and RAPIDS for recommendation systems and data science
05
Omniverse and Isaac platforms for simulation and robotics

Who is NVIDIA for?

Who benefits most from this tool
training large language models and neural networks
running real-time inference for applications like speech recognition and recommendation engines
accelerating scientific simulations and data analytics workloads

Pricing

Conference

€1428 one-time
  • Keynote (limited seating)
  • GTC Live keynote pregame
  • Keynote watch party
  • Sessions, talks, and panels
  • Training Labs
  • Certifications
  • Connect With the Experts sessions
  • Exhibits and receptions
  • Lunch

Exhibits Only

€357 one-time
  • Keynote and GTC Live watch party
  • Connect With the Experts sessions
  • Certifications
  • Exhibits and receptions
  • Lunch

Full-Day Workshop

€471 one-time
  • Eight-hour, hands-on technical workshop
  • Lunch

Trust & presence

Search presence Top 1k site
Domain Domain registered 1993

Gallery

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