Security Audit
appsflyer-automation
github.com/ComposioHQ/awesome-claude-skillsTrust Assessment
appsflyer-automation received a trust score of 85/100, placing it in the Mostly Trusted category. This skill has passed most security checks with only minor considerations noted.
SkillShield's automated analysis identified 1 finding: 0 critical, 0 high, 1 medium, and 0 low severity. Key findings include Unpinned Rube MCP dependency.
The analysis covered 4 layers: Manifest Analysis, Static Code Analysis, Dependency Graph, LLM Behavioral Safety. All layers scored 70 or above, reflecting consistent security practices.
Last analyzed on February 20, 2026 (commit 27904475). SkillShield performs automated 4-layer security analysis on AI skills and MCP servers.
Layer Breakdown
Security Findings1
| Severity | Finding | Layer | Location | |
|---|---|---|---|---|
| MEDIUM | Unpinned Rube MCP dependency The skill relies on the 'rube' MCP without specifying a version in its manifest. This introduces a supply chain risk, as updates to the 'rube' MCP could introduce breaking changes, vulnerabilities, or malicious code without explicit review or control. The skill's functionality and security could be compromised by an unvetted update to the dependency. Pin the 'rube' MCP dependency to a specific version or version range in the skill's manifest to ensure stability and security. For example, update `"rube"` to `"rube==1.2.3"` or `"rube>=1.0.0,<2.0.0"`. | LLM | SKILL.md |
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