Company Details
gimp-org
12
232
5112
gimp.org
0
GIM_1613200
In-progress


GIMP - Open Source Image Editor Company CyberSecurity Posture
gimp.orgThe Free & Open Source Image Editor. GNU Image Manipulation Program.
Company Details
gimp-org
12
232
5112
gimp.org
0
GIM_1613200
In-progress
Between 750 and 799

GOSIE Global Score (TPRM)XXXX

Description: Two critical security vulnerabilities were discovered in the popular GIMP image editing software. These vulnerabilities allow remote attackers to execute arbitrary code on affected systems. The flaws, identified as CVE-2025-2760 and CVE-2025-2761, were publicly disclosed on April 7th, 2025, and affect GIMP installations prior to version 3.0.0. Both vulnerabilities require user interaction to trigger successful exploitation. The vulnerabilities were discovered by security researcher Michael Randrianantenaina and reported through the Zero Day Initiative (ZDI). Each vulnerability carries a CVSS v3.0 base score of 7.8, indicating significant potential impacts on system confidentiality, integrity, and availability. Mitigation steps include upgrading to GIMP 3.0.0 or later versions and implementing security awareness training.


No incidents recorded for GIMP - Open Source Image Editor in 2026.
No incidents recorded for GIMP - Open Source Image Editor in 2026.
No incidents recorded for GIMP - Open Source Image Editor in 2026.
GOSIE cyber incidents detection timeline including parent company and subsidiaries

The Free & Open Source Image Editor. GNU Image Manipulation Program.

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Explore insights on cybersecurity incidents, risk posture, and Rankiteo's assessments.
The official website of GIMP - Open Source Image Editor is https://www.gimp.org/.
According to Rankiteo, GIMP - Open Source Image Editor’s AI-generated cybersecurity score is 750, reflecting their Fair security posture.
According to Rankiteo, GIMP - Open Source Image Editor currently holds 0 security badges, indicating that no recognized compliance certifications are currently verified for the organization.
According to Rankiteo, GIMP - Open Source Image Editor has not been affected by any supply chain cyber incidents, and no incident IDs are currently listed for the organization.
According to Rankiteo, GIMP - Open Source Image Editor is not certified under SOC 2 Type 1.
According to Rankiteo, GIMP - Open Source Image Editor does not hold a SOC 2 Type 2 certification.
According to Rankiteo, GIMP - Open Source Image Editor is not listed as GDPR compliant.
According to Rankiteo, GIMP - Open Source Image Editor does not currently maintain PCI DSS compliance.
According to Rankiteo, GIMP - Open Source Image Editor is not compliant with HIPAA regulations.
According to Rankiteo,GIMP - Open Source Image Editor is not certified under ISO 27001, indicating the absence of a formally recognized information security management framework.
GIMP - Open Source Image Editor operates primarily in the Software Development industry.
GIMP - Open Source Image Editor employs approximately 12 people worldwide.
GIMP - Open Source Image Editor presently has no subsidiaries across any sectors.
GIMP - Open Source Image Editor’s official LinkedIn profile has approximately 232 followers.
GIMP - Open Source Image Editor is classified under the NAICS code 5112, which corresponds to Software Publishers.
No, GIMP - Open Source Image Editor does not have a profile on Crunchbase.
Yes, GIMP - Open Source Image Editor maintains an official LinkedIn profile, which is actively utilized for branding and talent engagement, which can be accessed here: https://www.linkedin.com/company/gimp-org.
As of January 22, 2026, Rankiteo reports that GIMP - Open Source Image Editor has experienced 1 cybersecurity incidents.
GIMP - Open Source Image Editor has an estimated 28,140 peer or competitor companies worldwide.
Incident Types: The types of cybersecurity incidents that have occurred include Vulnerability.
Detection and Response: The company detects and responds to cybersecurity incidents through an containment measures with implement proper input validation mechanisms, and remediation measures with upgrade to gimp 3.0.0 or later versions..
Title: Critical Security Vulnerabilities in GIMP Image Editing Software
Description: Two critical security vulnerabilities discovered in the popular GIMP image editing software have been disclosed. These vulnerabilities allow remote attackers to execute arbitrary code on affected systems.
Date Publicly Disclosed: 2025-04-07
Date Resolved: 2025-03-16
Type: Software Vulnerability
Attack Vector: Opening malicious filesVisiting compromised web pages
Vulnerability Exploited: CVE-2025-2760CVE-2025-2761
Threat Actor: Remote attackers
Motivation: Execute arbitrary code
Common Attack Types: The most common types of attacks the company has faced is Vulnerability.

Entity Name: GIMP
Entity Type: Software
Industry: Image Editing

Containment Measures: Implement proper input validation mechanisms
Remediation Measures: Upgrade to GIMP 3.0.0 or later versions
Prevention of Data Exfiltration: The company takes the following measures to prevent data exfiltration: Upgrade to GIMP 3.0.0 or later versions.
Handling of PII Incidents: The company handles incidents involving personally identifiable information (PII) through by implement proper input validation mechanisms.

Lessons Learned: Implement security awareness training to educate users about the risks of opening untrusted image files

Recommendations: Upgrade to GIMP 3.0.0 or later versions immediately to mitigate these vulnerabilities
Key Lessons Learned: The key lessons learned from past incidents are Implement security awareness training to educate users about the risks of opening untrusted image files.
Implemented Recommendations: The company has implemented the following recommendations to improve cybersecurity: Upgrade to GIMP 3.0.0 or later versions immediately to mitigate these vulnerabilities.

Source: Security vendors
Additional Resources: Stakeholders can find additional resources on cybersecurity best practices at and Source: Security vendors.

Root Causes: Insufficient Validation Of User-Supplied Data, Integer Overflow Condition, Out-Of-Bounds Write Condition,
Corrective Actions: Implement Proper Input Validation Mechanisms,
Corrective Actions Taken: The company has taken the following corrective actions based on post-incident analysis: Implement Proper Input Validation Mechanisms, .
Last Attacking Group: The attacking group in the last incident was an Remote attackers.
Most Recent Incident Publicly Disclosed: The most recent incident publicly disclosed was on 2025-04-07.
Most Recent Incident Resolved: The most recent incident resolved was on 2025-03-16.
Containment Measures in Most Recent Incident: The containment measures taken in the most recent incident was Implement proper input validation mechanisms.
Most Significant Lesson Learned: The most significant lesson learned from past incidents was Implement security awareness training to educate users about the risks of opening untrusted image files.
Most Significant Recommendation Implemented: The most significant recommendation implemented to improve cybersecurity was Upgrade to GIMP 3.0.0 or later versions immediately to mitigate these vulnerabilities.
Most Recent Source: The most recent source of information about an incident is Security vendors.
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Backstage is an open framework for building developer portals, and @backstage/backend-defaults provides the default implementations and setup for a standard Backstage backend app. Prior to versions 0.12.2, 0.13.2, 0.14.1, and 0.15.0, the `FetchUrlReader` component, used by the catalog and other plugins to fetch content from URLs, followed HTTP redirects automatically. This allowed an attacker who controls a host listed in `backend.reading.allow` to redirect requests to internal or sensitive URLs that are not on the allowlist, bypassing the URL allowlist security control. This is a Server-Side Request Forgery (SSRF) vulnerability that could allow access to internal resources, but it does not allow attackers to include additional request headers. This vulnerability is fixed in `@backstage/backend-defaults` version 0.12.2, 0.13.2, 0.14.1, and 0.15.0. Users should upgrade to this version or later. Some workarounds are available. Restrict `backend.reading.allow` to only trusted hosts that you control and that do not issue redirects, ensure allowed hosts do not have open redirect vulnerabilities, and/or use network-level controls to block access from Backstage to sensitive internal endpoints.
Backstage is an open framework for building developer portals, and @backstage/cli-common provides config loading functionality used by the backend and command line interface of Backstage. Prior to version 0.1.17, the `resolveSafeChildPath` utility function in `@backstage/backend-plugin-api`, which is used to prevent path traversal attacks, failed to properly validate symlink chains and dangling symlinks. An attacker could bypass the path validation via symlink chains (creating `link1 → link2 → /outside` where intermediate symlinks eventually resolve outside the allowed directory) and dangling symlinks (creating symlinks pointing to non-existent paths outside the base directory, which would later be created during file operations). This function is used by Scaffolder actions and other backend components to ensure file operations stay within designated directories. This vulnerability is fixed in `@backstage/backend-plugin-api` version 0.1.17. Users should upgrade to this version or later. Some workarounds are available. Run Backstage in a containerized environment with limited filesystem access and/or restrict template creation to trusted users.
Backstage is an open framework for building developer portals. Multiple Scaffolder actions and archive extraction utilities were vulnerable to symlink-based path traversal attacks. An attacker with access to create and execute Scaffolder templates could exploit symlinks to read arbitrary files via the `debug:log` action by creating a symlink pointing to sensitive files (e.g., `/etc/passwd`, configuration files, secrets); delete arbitrary files via the `fs:delete` action by creating symlinks pointing outside the workspace, and write files outside the workspace via archive extraction (tar/zip) containing malicious symlinks. This affects any Backstage deployment where users can create or execute Scaffolder templates. This vulnerability is fixed in `@backstage/backend-defaults` versions 0.12.2, 0.13.2, 0.14.1, and 0.15.0; `@backstage/plugin-scaffolder-backend` versions 2.2.2, 3.0.2, and 3.1.1; and `@backstage/plugin-scaffolder-node` versions 0.11.2 and 0.12.3. Users should upgrade to these versions or later. Some workarounds are available. Follow the recommendation in the Backstage Threat Model to limit access to creating and updating templates, restrict who can create and execute Scaffolder templates using the permissions framework, audit existing templates for symlink usage, and/or run Backstage in a containerized environment with limited filesystem access.
FastAPI Api Key provides a backend-agnostic library that provides an API key system. Version 1.1.0 has a timing side-channel vulnerability in verify_key(). The method applied a random delay only on verification failures, allowing an attacker to statistically distinguish valid from invalid API keys by measuring response latencies. With enough repeated requests, an adversary could infer whether a key_id corresponds to a valid key, potentially accelerating brute-force or enumeration attacks. All users relying on verify_key() for API key authentication prior to the fix are affected. Users should upgrade to version 1.1.0 to receive a patch. The patch applies a uniform random delay (min_delay to max_delay) to all responses regardless of outcome, eliminating the timing correlation. Some workarounds are available. Add an application-level fixed delay or random jitter to all authentication responses (success and failure) before the fix is applied and/or use rate limiting to reduce the feasibility of statistical timing attacks.
The Flux Operator is a Kubernetes CRD controller that manages the lifecycle of CNCF Flux CD and the ControlPlane enterprise distribution. Starting in version 0.36.0 and prior to version 0.40.0, a privilege escalation vulnerability exists in the Flux Operator Web UI authentication code that allows an attacker to bypass Kubernetes RBAC impersonation and execute API requests with the operator's service account privileges. In order to be vulnerable, cluster admins must configure the Flux Operator with an OIDC provider that issues tokens lacking the expected claims (e.g., `email`, `groups`), or configure custom CEL expressions that can evaluate to empty values. After OIDC token claims are processed through CEL expressions, there is no validation that the resulting `username` and `groups` values are non-empty. When both values are empty, the Kubernetes client-go library does not add impersonation headers to API requests, causing them to be executed with the flux-operator service account's credentials instead of the authenticated user's limited permissions. This can result in privilege escalation, data exposure, and/or information disclosure. Version 0.40.0 patches the issue.

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