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Product NewsSASEZero Trust
AICloudflare OneMCPProduct NewsSASEZero Trust
August 14, 2026
**AJ Gerstenhaber and **Kenny Johnson
17 minute read
** COPY URL
Most companies designed their resource permissions with a human user in mind. A senior engineer may be able to deploy to production, query a sensitive database, or revoke another user's access. Those privileges come with risk, but that risk has traditionally been bounded by two assumptions: the engineer will use human judgment, and the engineer can only act at human speed.
An engineer who sees an unexpected result will usually stop and reconsider their actions. Any human being can only click, type, and review so much in a single day. The introduction of AI agents changes both thresholds. Their decisions are nondeterministic, and they can take the same action (or invoke the same tool) indefinitely, without getting tired or stopping for lunch. A plausible — but incorrect — decision can become thousands of incorrect actions before a human notices.
Today, we're announcing newCloudflare One capabilities to identify inspected MCP traffic, show which users and servers are generating it, and control direct connections on managed network paths. Combined withMCP Server Portals, these controls help administrators see whether agents are using an approved path, or somehow bypassing it.
Model Context Protocol (MCP) servers give agents a common way to discover and invoke tools backed by third-party SaaS products, internal applications, and APIs. The underlying permissions are likely familiar; what changes is who makes each decision, and how quickly a bad decision can spread.
Connecting an agent to one of these tools can take a single line of configuration. An employee can point Claude Code, Codex, Cursor, OpenCode, VS Code, or any AI harness at an MCP server without checking whether it is approved. The resulting traffic has no obvious shape. The Model Context Protocol does not use a guaranteed hostname or require /mcp in the path, so a direct connection can look like any other HTTPS API call.
To explain how these controls fit together, we'll start with the anatomy of a tool call and the information it exposes. We'll then compare the three places a security team can act: inside the client, on the network, and at the MCP server. From there, we'll show howCloudflare Gateway uses protocol signals to find shadow MCP traffic and enforce MCP Portal-only access to trusted MCP servers.
The same MCP tool call has three forms as it moves through a system. Inside the client it is a decision to invoke a tool with a set of arguments. On the network it is an HTTP transaction carrying aJSON-RPC message. At the server it becomes a call to a tool handler that may read data, change state, or complete some other action.
Consider an agent that wants to know the weather in Austin. A remote MCP request can look like this:
POST /mcp HTTP/1.1
Host: tools.example.com
Authorization: Bearer -token>
Content-Type: application/json
MCP-Protocol-Version: 2026-07-28
Mcp-Method: tools/call
Mcp-Name: get_weather
{
"jsonrpc": "2.0",
"id": 42,
"method": "tools/call",
"params": {
"name": "get_weather",
"arguments": {
"city": "Austin"
}
}
}
**
There are several useful signals packed into this request. The hostname and path identify the destination. The authorization header carries the credential used to authenticate the caller when the server requires one. The header: MCP-Protocol-Version identifies the protocol version, while Mcp-Method and Mcp-Name expose the operation and tool in the new stateless protocol. The JSON-RPC envelope repeats the method, gives the request an id that the client can match with a response, and carries the tool arguments in params.
The arguments are the most sensitive part. They can contain a search query, source code, customer data, or instructions for an action such as creating a ticket or changing infrastructure. The tool name says what the agent intends to call; the arguments say what data it will send and what action it wants the server to perform.
If the call succeeds, the server returns a JSON-RPC response with the same id and the tool result. That response may also contain sensitive data. Request inspection can stop an unsafe action before execution, while response inspection and logging show what the tool returned to the agent.
The request gives security teams three places to observe or control the call.
Aclient hook can run after the model selects a tool but before the client serializes the request. From there, it can see the destination server, tool name, and arguments without decrypting network traffic.
This is the earliest stage in the request chain to exercise control. The client can deny a server that is not on an allowlist, ask the user to confirm a sensitive operation, or remove data from the arguments before it leaves the device. It can also cover local stdio (aka local) MCP servers, which never generate network traffic.
This presents a standardization challenge. In order for a security team to benefit from this, they would need to reproduce their controls across every client that their employees use. Client-side controls work best when the organization manages both the client and the device, but telemetry from one client is never a complete inventory of MCP use.
Asecure web gateway can observe the HTTP request after it leaves the client. WithTLS decryption, it can associate the request with a user and device, inspect the destination and protocol headers, and apply policy without depending on a particular MCP client.
The network layer has the widest lens to detect remote MCP traffic on managed paths. It can identify direct connections to servers outside an approved Portal and block them before the request reaches the destination. Wheredata loss prevention scanning is supported, a proxy can also examine the JSON-RPC method and arguments for sensitive data. However, proxies cannot see local stdio calls or off-network traffic.
The server has the richest execution context. It has authenticated the caller, parsed the MCP message, resolved get_weather to a handler, and validated the supplied arguments against the tool's input schema. This is the last point where the request can be denied before the tool runs.
AnAgents SDK handler or similar server middleware can authorize the caller for the specific tool, apply rate limits, inspect arguments, and record the outcome. A server should perform these checks before invoking the handler, especially for tools that write data or trigger external actions. Logging only after execution can explain what happened, but it cannot prevent it.
Cloudflare'sWriteGuard uses this pattern across our internal MCP servers. Each tool has a risk tier and an enabled or disabled state. WriteGuard can pass a read through unchanged, add agent attribution and an audit event to an allowed write, or block a critical action before its handler runs. Because the control lives at the server, an end user cannot bypass it by switching clients or disabling a local hook.
While server-side controls only protect servers that implement them, the client and server have the best request depth. The network sees the widest set of remote connections. Used together, these controls can stop sensitive data before it leaves a device, find unmanaged MCP traffic, and deny an unauthorized operation before a tool executes.
The network control point has the broadest coverage, but it first has to distinguish MCP from ordinary HTTPS traffic, a user must be running a proxy, and the MCP Server (or Portal) must verify that the proxy was used in the connection.
Cloudflare One provides the networking pieces of that chain. TheCloudflare One Client sends traffic from managed devices through Gateway. Gateway can classify MCP requests at the protocol layer, and distinguish whether traffic is initiated from an MCP Portal, or is going outside approved controls. Administrators can then report on, or block connections that do not follow the approved path. That process starts with identifying the request reliably.
Our first approach to finding MCP traffic used the GraphQL Analytics API to searchGateway HTTP logs for hostnames containing mcp and common paths like /mcp or /sse. OurMCP traffic detection tutorial includes the query. It also explains how to createdata loss prevention patterns for MCP JSON-RPC methods like initialize, tools/call, and resources/read in request bodies.
Those signals are still useful for finding traffic from older clients and providing historical visibility, but they're very basic. They miss an MCP server at an ordinary URL like https://tools.example.com/api, which is not uncommon.
And they can match an unrelated service that happens to use mcp in a hostname or path (unlikely, but we have seen it). For conforming Streamable HTTP clients, the protocol header is a more specific signal. TheMCP 2025-11-25 specification says clients MUST include MCP-Protocol-Version on every HTTP request after initialization. TheMCP 2026-07-28 specification goes further and requires it on every POST request.
That does not make the header a complete detector. The initial request from a legacy client may not contain it, protocol versions earlier than 2025-06-18 did not define it, and local stdio, custom transport, or nonconforming traffic may never carry it. Its presence is a strong positive indicator of MCP; its absence does not prove that a request is not MCP.
The legacy MCP flow begins with an initialize request that does not contain the MCP-Protocol-Version HTTP header, so a network control may not classify the first request to a previously unknown endpoint from the header alone. The signal appears after the client and server finish initialization.
A later tool call looks like this:
POST /api HTTP/1.1
Host: tools.example.com
Content-Type: application/json
MCP-Protocol-Version: 2025-11-25
{"jsonrpc":"2.0","id":2,"method":"tools/call","params":{"name":"get_weather"}}
**
TheMCP 2026-07-28 specification changes this model considerably. The core protocol is stateless; it removes the initialize handshake entirely and places the protocol version and operation on each request:
POST /mcp HTTP/1.1
Host: tools.example.com
Content-Type: application/json
MCP-Protocol-Version: 2026-07-28
Mcp-Method: tools/call
Mcp-Name: get_weather
{"jsonrpc":"2.0","id":1,"method":"tools/call","params":{"name":"get_weather"}}
**
The Mcp-Method and Mcp-Name h
…(truncated for reading performance)
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