acquiring-disk-image-w…
Create forensically sound bit-for-bit disk images using dd and dcfldd while preserving evidence integrity through
Parse and analyze Cobalt Strike Malleable C2 profiles using dissect.cobaltstrike and pyMalleableC2 to extract
$ npx -y skills add Mikaru0Mystic/sectinel --skill analyzing-cobaltstrike-malleable-c2-profiles --agent claude-codeHow it fires
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Parse and analyze Cobalt Strike Malleable C2 profiles using dissect.cobaltstrike and pyMalleableC2 to extract
name: analyzing-cobaltstrike-malleable-c2-profiles description: Parse and analyze Cobalt Strike Malleable C2 profiles using dissect.cobaltstrike and pyMalleableC2 to extract C2 indicators, detect evasion techniques, and generate network detection signatures. domain: cybersecurity subdomain: malware-analysis tags: - cobalt-strike - malleable-c2 - c2-detection - beacon-analysis - network-signatures - threat-hunting - red-team-tools version: '1.0' author: mahipal license: Apache-2.0 nist_csf: - DE.AE-02 - RS.AN-03 - ID.RA-01 - DE.CM-01
Cobalt Strike Malleable C2 profiles are domain-specific language scripts that customize how Beacon communicates with the team server, defining HTTP request/response transformations, sleep intervals, jitter values, user agents, URI paths, and process injection behavior. Threat actors use malleable profiles to disguise C2 traffic as legitimate services (Amazon, Google, Slack). Analyzing these profiles reveals network indicators for detection: URI patterns, HTTP headers, POST/GET transforms, DNS settings, and process injection techniques. The `dissect.cobaltstrike` library can parse both profile files and extract configurations from beacon payloads, while `pyMalleableC2` provides AST-based parsing using Lark grammar for programmatic profile manipulation and validation.
1. Install libraries: `pip install dissect.cobaltstrike` or `pip install pyMalleableC2` 2. Parse profile with `C2Profile.from_path("profile.profile")` 3. Extract HTTP GET/POST block configurations (URIs, headers, parameters) 4. Identify user agent strings and spoof targets 5. Extract sleep time, jitter percentage, and DNS beacon settings 6. Analyze process injection settings (spawn-to, allocation technique) 7. Generate Suricata/Snort signatures from extracted network indicators 8. Compare profile against known threat actor profile collections 9. Extract staging URIs and payload delivery mechanisms 10. Produce detection report with IOCs and recommended network signatures
A JSON report containing extracted C2 URIs, HTTP headers, user agents, sleep/jitter settings, process injection config, spawned process paths, DNS settings, and generated Suricata-compatible detection rules.
Open-source security arsenal for AI coding agents: 784 cybersecurity skills, scanner integrations, and a security MCP for Claude Code, Cursor, opencode, Gemini CLI, Cline, and any agentskills.io agent. Mapped to OWASP, MITRE ATT&CK, NIST CSF, D3FEND, ATLAS.
Repo: Mikaru0Mystic/sectinel
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