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Vercel Open Source Program: Winter 2026 cohort How Notion Workers run untrusted code at scale with Vercel Sandbox How we run Vercel's CDN in front of Discourse From idea to secure checkout in minutes with Stripe Building Slack agents can be easy Scaling redirects to infinity on Vercel Advancing Python typing Gamma builds design-first agents with Vercel How Avalara turns pipe dreams into patent-pending with v0 Keeping community human while scaling with agents How OpenEvidence built a healthcare AI that physicians actually trust Security boundaries in agentic architectures Skills Night: 69,000+ ways agents are getting smarter Video Generation with AI Gateway We Ralph Wiggumed WebStreams to make them 10x faster How Stably ships AI testing agents in hours, not weeks How we built AEO tracking for coding agents Anyone can build agents, but it takes a platform to run them Introducing Geist Pixel The Vercel AI Accelerator is back with $6m in credits Making agent-friendly pages with content negotiation The Vercel OSS Bug Bounty program is now available Introducing the new v0 Run untrusted code with Vercel Sandbox, now generally available How Stripe built a game-changing app in a single flight with v0 How Sensay went from zero to product in six weeks AGENTS.md outperforms skills in our agent evals Agent skills explained: An FAQ Testing if "bash is all you need" AWS databases are now live on the Vercel Marketplace and v0 Use Perplexity Web Search with Vercel AI Gateway Introducing: React Best Practices Nick Bogaty joins Vercel as Chief Revenue Officer How Mux shipped durable video workflows with their @mux/ai SDK How to build agents with filesystems and bash How we made v0 an effective coding agent Stopping the slow death of internal tools Building AI-Generated Pixel Trading Cards with Vercel AI Gateway We removed 80% of our agent’s tools AI SDK 6 Our $1 million hacker challenge for React2Shell Cline now runs on Vercel AI Gateway How to prompt v0 Build smarter workflows with Notion and v0 Vercel launches partner certification Inside Workflow DevKit: How framework integrations work React2Shell Security Bulletin | Vercel Knowledge Base Billions of requests: Black Friday-Cyber Monday 2025 Investing in the Python ecosystem AWS Databases coming to the Vercel Marketplace How we built the v0 iOS app Workflow Builder: Build your own workflow automation platform Vercel Open Source Program: Fall 2025 cohort Self-driving infrastructure Vercel collaborates with Google for Gemini 3 Pro Preview launch Vercel: The anti-vendor-lock-in cloud How Nous Research used BotID to block automated abuse at scale How AI Gateway runs on Fluid compute What we learned building agents at Vercel Build and deploy data applications on Snowflake with v0 BotID Deep Analysis catches a sophisticated bot network in real-time Vercel achieves TISAX AL2 compliance to serve automotive partners Bun runtime on Vercel Functions David Totten Joins Vercel to Lead Global Field Engineering Vercel Ship AI 2025 recap You can just ship agents AI agents and services on the Vercel Marketplace Built-in durability: Introducing Workflow Development Kit Zero-config backends on Vercel AI Cloud Introducing Vercel Agent: Your new Vercel teammate Update regarding Vercel service disruption on October 20, 2025 Agents at work, a partnership with Salesforce and Slack Running Next.js in ChatGPT: How to Build ChatGPT Apps Talha Tariq joins Vercel as CTO of Security Just another (Black) Friday Server rendering benchmarks: Fluid Compute and Cloudflare Workers Towards the AI Cloud: Our Series F Collaborating with Anthropic on Claude Sonnet 4.5 to power intelligent coding agents Preventing the stampede: Request collapsing in the Vercel CDN BotID uncovers hidden SEO poisoning How we made global routing faster with Bloom filters What you need to know about vibe coding Scale to one: How Fluid solves cold starts Addressing security & quality issues with MCP tools - Vercel AI agents at scale: Rox’s Vercel-powered revenue operating system Agentic Infrastructure Zero Data Retention on AI Gateway Optimizing Vercel Sandbox snapshots How Waldium made a blog platform work for humans and AI alike How FLORA shipped a creative agent on Vercel's AI stack Agent responsibly Making Turborepo 96% faster with agents, sandboxes, and humans Unified reporting for all AI Gateway usage new.website joins forces with v0 SERHANT.'s playbook for rapid AI iteration Two startups at global scale without DevOps Chat SDK brings agents to your users 360 billion tokens, 3 million customers, 6 engineers Meet the 2026 Vercel AI Accelerator Cohort Build knowledge agents without embeddings
The AI Cloud: A unified platform for AI workloads - Vercel – Vercel
Dan Fein · 2025-07-10 · via Vercel News

6 min read

The same principles and ease of use you expect from Vercel, now for your agentic applications.

For over a decade, Vercel has helped teams develop, preview, and ship everything from static sites to full-stack apps. That mission shaped the Frontend Cloud, now relied on by millions of developers and powering some of the largest sites and apps in the world.

Now, AI is changing what and how we build. Interfaces are becoming conversations and workflows are becoming autonomous.

We've seen this firsthand while building v0 and working with AI teams like Browserbase and Decagon. The pattern is clear: developers need expanded tools, new infrastructure primitives, and even more protections for their intelligent, agent-powered applications.

At Vercel Ship, we introduced the AI Cloud: a unified platform that lets teams build AI features and apps with the right tools to stay flexible, move fast, and be secure, all while focusing on their products, not infrastructure.

The AI Cloud introduces new AI-first tools and primitives, like:

  • AI SDK and AI Gateway to integrate with any model or tool

  • Fluid compute with Active CPU pricing for high-concurrency, low-latency, cost-efficient AI execution

  • Tool support, MCP servers, and queues, for autonomous actions and background task execution

  • Secure sandboxes to run untrusted agent-generated code

These solutions all work together so teams can build and iterate on anything from conversational AI frontends to an army of end-to-end autonomous agents, without infrastructure or additional resource overhead.

See what the AI Cloud can do

Hear Guillermo Rauch introduce the AI Cloud at Vercel Ship 2025.

Watch the Keynote

Link to headingA unified, self-driving platform

What makes the AI Cloud powerful is the same principle that made the Frontend Cloud successful: infrastructure should emerge from code, not manual configuration. Framework-defined infrastructure turns your application logic into running cloud services, automatically. This is even more important as we see agents and AI shipping more code than ever before.

With the AI Cloud, you (or your agents) can build AI apps without ever touching low-level infrastructure.

Take AI SDK, which makes it easy to work with LLMs by standardizing code across the many providers and lets you swap models without changing code. AI inference is made simple by generalizing many provider-specific processes.

When the AI SDK is deployed in a Vercel application, calls are routed to the appropriate vendor. They can also go through the AI Gateway, a global provider-agnostic layer that manages API keys, provider accounts, and improves availability with retries, fallbacks, and performance optimizations.

app/api/flights/route.ts

import { streamText, StreamingTextResponse, tool } from 'ai';

import { z } from 'zod';

export async function POST(req: Request) {

const { prompt } = await req.json();

const result = await streamText({

model: 'openai/gpt-4o', // This will access the model via AI Gateway

prompt,

tools: {

weather: tool({

description: 'Get the weather in a location',

parameters: z.object({

location: z.string()

}),

execute: async ({ location }) => {

const res = await fetch(

`https://api.weatherapi.com/v1/current.json?q=${location}`

);

const data = await res.json();

return { location, weather: data };

},

}),

},

});

return new StreamingTextResponse(result);

}

A sample AI API endpoint using AI SDK and AI Gateway. Its structure resembles a traditional endpoint with an easy package to accept a prompt from the frontend and stream a response back.

In this example, AI SDK defines the interaction, while AI Gateway handles the execution. Together, they reduce the overhead of building and scaling AI features that can actually reason and derive intent.

These AI calls often run as simple functions that must scale instantly. But unlike typical workloads, LLM interactions frequently involve wait times and long idle periods. This breaks the operational model of traditional serverless, which isn't efficient during inactivity. AI workloads need a compute model that handles both burst and idle with minimal overhead.

Link to headingAI Cloud compute

At the core of the AI Cloud is Fluid compute, which optimizes for these workloads while eliminating traditional serverless and server tradeoffs such as cold starts, manual scaling, overprovisioning, and inefficient concurrency.

Fluid deploys with the serverless model while intelligently reusing existing resources before scaling to create new ones, and with Active CPU pricing, resources are not only reduced, but you only pay compute rates when your code is actively executing.

For workloads with high idle time, such as AI inference, agents, or MCP servers that wait on external responses, this resource efficiency can reduce costs by up to 90% compared to traditional serverless. This efficiency also applies during an AI agent's tool use.

Link to headingTool execution

After reasoning, where intent is identified and plans are generated, agents often execute tools. AI SDK manages this process: registering tools, exposing them to the model, and handling execution, all running on Fluid compute.

Tools can be executed sequentially or in parallel, depending on the task. These tool calls may be simple functions running in Vercel Functions or routed to MCP servers, a protocol introduced by Anthropic and supported by Vercel.

Link to headingSimplified MCP server support

MCP servers can resemble API routes in many ways: a single endpoint that can run as Functions, but under the hood they're like a tailored toolkit that helps an AI achieve a particular task. There may be multiple APIs and other business logic used behind the scenes for a single MCP server.

The Vercel MCP adapter simplifies building MCP servers on Vercel. With the @vercel/mcp-adapter package, new API endpoints can be created and existing ones transformed to serve MCP and easily provide agentic access to essential app functions.

MCP Server with Next.js

Get started building your first MCP server on Vercel.

Deploy now

Link to headingOffloading tasks to the background

For long-running or async tasks, Vercel Queues handle the orchestration. Agents can fan out execution, retry failed steps, or offload background work without blocking.

After a potentially long sequence of actions, tool invocations, and evaluations, the system returns a final output. The output at this point could simply be text or generated content that's returned to the user.

Link to headingSecure execution with Vercel Sandbox

Sometimes actions involve running code that was generated by the agent. As this code hasn't been validated by users, it's considered untrusted. It may be completely harmless, but this code shouldn't have the same privileged access to your Vercel deployments and their associated environment variables, API keys, and more.

This is where Vercel Sandbox comes in. Running on Fluid compute with Active CPU pricing, agents launch ephemeral, isolated servers for untrusted code. VMs spin up fast, run securely, provide user-accessible URLs, then terminate cleanly.

Sandbox supports multiple runtimes including Node.js and Python, comes with common packages pre-installed, and allows installing additional packages with sudo access.

const sandbox = await Sandbox.create({

source: {

url: "https://github.com/user/code-repo.git",

type: "git"

},

runtime: "node22",

timeout: ms("2m"),

});

Sandbox code is simple with an SDK that grants control over initial creation, updates, and termination.

Link to headingObservability into agentic workloads

As agentic applications grow and agents become more autonomous, the context, memory, and evolving reasoning chains they generate need to be inspectable and measurable. Each step in those chains requires visibility.

Because agentic systems often loop or retry, it’s not enough to view single requests in isolation, and debugging a single agentic run might not surface critical errors or areas for performance optimizations.

Vercel Observability gives developers the tools to understand their apps holistically, making it easy to debug slow agents, identify hotspots, and monitor for regressions.

Link to headingSecuring high-value, critical routes

These agentic workloads are inherently valuable operations that need protection. The stakes are higher as agentic workloads increase in autonomy and carry direct, tangible costs with LLM providers.

Modern sophisticated bots execute JavaScript, solve CAPTCHAs, and navigate interfaces like real users. Traditional defenses like checking headers or rate limits aren't enough against automation that targets expensive operations like agentic workflows.

Vercel BotID is an invisible CAPTCHA that stops browser automation before it reaches your backend. It protects critical routes where automated abuse has real cost: endpoints that trigger LLM calls or agent workflows.

BotID is part of Vercel's larger Bot Management suite of tools that range from protecting entire applications from voluminous spray-and-pray DDoS attacks, to the most sophisticated, stealthy targeted application attacks.

Get started with Vercel BotID

Detect and stop advanced bots before they reach your most sensitive routes like login, checkout, AI agents, and APIs. Easy to implement, hard to bypass.

Get started

Link to headingThe AI Cloud, powered by Vercel

The web is at the early stages of this major shift: building on the decades-long move from purely static to highly dynamic, it is now entering the generative, agentic era.

Some companies launch as AI-native from day one. Others gradually embed AI into existing applications. Either way, every industry will build with AI, from ecommerce to education to finance. This means new conversational frontends and generative backends that create content, insights, and decisions on demand, including optimizing for AI crawlers and LLM SEO.

Vercel is where modern apps are built and shipped. From the Frontend Cloud to the AI Cloud, teams operate with the speed, security, and simplicity they expect. But now, with the power of AI. The AI Cloud already powers some of the most ambitious platforms in production. We're here for the next era of the web, where developers don't just write apps. They define agents.

Let us know how we can help

Whether you're starting a migration, need help optimizing, or want to add AI to your apps and workflows, we're here to partner with you.

Contact Us