CVE-2026-54353 — @budibase/backend-core
HIGHCVE-2026-54353 is a high-severity (CVSS 8.5) CWE-367 vulnerability in @budibase/backend-core. A fix is available for @budibase/backend-core — see the affected versions and patch details below.
Budibase: Potential SSRF DNS rebinding bypass in outbound fetch validation
Exploitation Status
Proof-of-concept exploit code exists
- CISA’s SSVC triage found public proof-of-concept exploit code for this CVE, though no confirmed active exploitation.
Exploitation and automatability from CISA’s SSVC triage for CVE-2026-54353.
EPSS Exploitation Probability
Probability of exploitation in the next 30 days, from FIRST.org EPSS.
How urgent is this, really
CVE-2026-54353 by exploitation likelihood (EPSS) against impact (CVSS). Outside the shaded patch-first corner.
Where this sits among everything scored
Of 379,842 CVEs with a current EPSS score, this one falls in the < 10% band (highlighted). Counts from FIRST.org, log-scaled.
Real-World Exposure
How broadly this vulnerability is actually deployed: weekly install volume shows current usage, and reverse-dependency count shows how many other packages break if it stays unpatched.
@budibase/backend-corenpmDescription
Summary
Authenticated users with automation permissions can bypass Budibase's SSRF blacklist through DNS rebinding.
The outbound fetch flow validates a hostname against the blacklist before the request is sent, but the actual socket connection later performs a separate DNS lookup through node-fetch. Since the validated IPs are never pinned to the connection, an attacker-controlled hostname can return a public IP during validation and a private/internal IP during the real connection.
This results in a non-blind SSRF primitive against internal services reachable from the Budibase host, including loopback, RFC1918 ranges, and cloud metadata endpoints.
Details
The issue comes from the outbound fetch validation flow resolving DNS twice:
During blacklist validation Again during the real socket connection
The first lookup result is discarded after validation, so the second lookup is free to resolve to a different IP.
This creates a classic TOCTOU DNS rebinding issue.
Affected flow in:
packages/backend-core/src/utils/outboundFetch.ts
async function throwIfUnsafe(url: string): Promise<void> {
const parsed = parseUrl(url)
if (await isBlacklisted(parsed.hostname)) {
throw new Error("URL is blocked or could not be resolved safely.")
}
}
for (let redirects = 0; redirects <= MAX_REDIRECTS; redirects++) {
await throwIfUnsafe(nextUrl)
const response = await fetchFn(nextUrl, nextRequest)
// ...
}
fetchFn uses plain node-fetch with no custom http.Agent / https.Agent, so the underlying socket performs its own independent dns.lookup after validation completes.
The same pattern also exists in:
packages/server/src/automations/steps/utils.ts
await throwIfBlacklisted(nextUrl)
const response = await fetch(nextUrl, nextRequest)
The blacklist implementation resolves hostnames but only returns a boolean:
packages/backend-core/src/blacklist/blacklist.ts
async function lookup(address: string): Promise<string[]> {
address = parseAddress(address)
const addresses = await performLookup(address, { all: true })
return addresses.map(addr => addr.address)
}
export async function isBlacklisted(address: string): Promise<boolean> {
// ...
if (!net.isIP(address)) {
try {
ips = await lookup(address)
} catch (e) {
/* ... */
}
} else {
ips = [address]
}
return ips.some(ip => blackList!.check(ip, getIpVersion(ip)))
}
The resolved IPs are discarded, so callers cannot pin the later socket connection to the validated addresses.
An attacker controlling authoritative DNS for a hostname can therefore return:
a public IP during validation a private/internal IP during the actual connection
Anything routing through these helpers inherits the issue, including:
outgoing webhook Slack Discord Make Zapier n8n AI extract object-store fetches
Several of these steps return upstream response content directly into automation output, which makes the SSRF non-blind.
PoC
Tested locally against a self-hosted build from master. No Budibase-operated infrastructure was touched.
Run Budibase locally.
Start a harmless local HTTP listener:
python3 -m http.server 8080 --bind 127.0.0.1
Use a rebinding hostname such as:
7f000001.cb007264.rbndr.us
which rotates between:
127.0.0.1 203.0.113.100
Steps to reproduce:
Log into Budibase with automation permissions. Create an automation using the Outgoing Webhook step. Set the URL to: http://<rebinding-host>:8080/ Trigger the automation.
Observed result:
The blacklist validation resolves the hostname to the public IP and allows the request. node-fetch performs a second DNS lookup during socket creation. The second lookup resolves to 127.0.0.1. The TCP connection lands on the local service. The local server response body appears directly in the automation output. Impact
This produces a non-blind read-SSRF primitive against anything reachable from the Budibase host process, including:
loopback services (127.0.0.1) RFC1918 ranges internal Kubernetes/VPC services cloud metadata endpoints (169.254.169.254)
On cloud deployments without IMDSv2 enforcement, this may expose temporary IAM credentials via:
/latest/meta-data/iam/security-credentials/<role>
On multi-tenant hosted deployments, this may also create potential cross-tenant access paths through shared internal infrastructure.
Affected Packages
| Ecosystem | Package | Vulnerable range | Fix |
|---|---|---|---|
| 📦npm | @budibase/backend-core | all versions | 3.39.9npm install @budibase/backend-core@3.39.9 |
Affected Products
budibasebudibaseDetection & mitigation playbook
Open-source dependencyDetect
Scan your dependency tree (package-lock.json, pnpm-lock.yaml, requirements.txt, go.sum, etc.) for @budibase/backend-core, including transitive dependencies — a direct dependency you never call can still pull in a vulnerable version.
Fix
Update @budibase/backend-core to 3.39.9 or later, then make sure no transitive (indirect) dependency still pins the vulnerable range — O3 confirms CVE-2026-54353 is resolved across your whole dependency graph.
Workarounds
Restrict outbound requests from the affected component to an allowlist of hosts, block access to link-local and internal address ranges at the network layer, and require authentication on internal services so a forged request cannot reach them unauthenticated.
Frequently Asked Questions
Is CVE-2026-54353 in your dependencies?
Find it across npm, including transitive dependencies.