acquiring-disk-image-w…
Create forensically sound bit-for-bit disk images using dd and dcfldd while preserving evidence integrity through
Conduct internal Active Directory reconnaissance using BloodHound Community Edition to map attack paths, identify
$ npx -y skills add Mikaru0Mystic/sectinel --skill conducting-internal-reconnaissance-with-bloodhound-ce --agent claude-codeHow it fires
How this skill gets triggered: by you, by Claude, or both.
/conducting-internal-reconnaissance-with-bloodhound-ceContext preview
The summary Claude sees to decide when to auto-load this skill.
Conduct internal Active Directory reconnaissance using BloodHound Community Edition to map attack paths, identify
name: conducting-internal-reconnaissance-with-bloodhound-ce description: Conduct internal Active Directory reconnaissance using BloodHound Community Edition to map attack paths, identify privilege escalation chains, and discover misconfigurations in domain environments. domain: cybersecurity subdomain: red-teaming tags: - red-team - reconnaissance - bloodhound - active-directory - attack-paths - privilege-escalation - graph-analysis version: '1.0' author: mahipal license: Apache-2.0 d3fend_techniques: - Restore Access - Password Authentication - Biometric Authentication - Strong Password Policy - Restore User Account Access nist_csf: - ID.RA-01 - GV.OV-02 - DE.AE-07
> **Legal Notice:** This skill is for authorized security testing and educational purposes only. Unauthorized use against systems you do not own or have written permission to test is illegal and may violate computer fraud laws.
BloodHound Community Edition (CE) is a modern, web-based Active Directory reconnaissance platform developed by SpecterOps that uses graph theory to reveal hidden relationships and attack paths within AD environments. Unlike the legacy BloodHound application, BloodHound CE uses a PostgreSQL backend with a dedicated graph database, providing improved performance, a modern web UI, and enhanced API capabilities. Red teams use BloodHound CE to collect AD objects, ACLs, sessions, group memberships, and trust relationships, then visualize attack paths from compromised low-privileged accounts to high-value targets like Domain Admins. The SharpHound collector (v2 for CE) gathers data from Active Directory, while AzureHound collects from Azure AD / Entra ID environments.
1. Deploy BloodHound CE using Docker Compose:
curl -L https://ghst.ly/getbhce -o docker-compose.yml docker compose pull docker compose up -d
2. Access the web interface at https://localhost:8080 3. Log in with the default admin credentials (displayed in Docker logs):
docker compose logs | grep "Initial Password"
4. Change the default admin password immediately
1. Transfer SharpHound v2 to the compromised Windows host:
# Execute full collection .\SharpHound.exe -c All --outputdirectory C:\Temp # DCOnly collection (LDAP only, stealthier) .\SharpHound.exe -c DCOnly # Session collection for logged-on user mapping .\SharpHound.exe -c Session --loop --loopduration 02:00:00 # Collect from specific domain .\SharpHound.exe -c All -d child.domain.local
2. Alternative: Use BloodHound.py from Linux:
bloodhound-python -u user -p 'Password123' -d domain.local -ns 10.10.10.1 -c All
3. Exfiltrate the generated ZIP file to the analysis workstation
1. Upload collected data via the BloodHound CE web interface (File Ingest) 2. Mark compromised accounts as "Owned" in the interface 3. Run built-in analysis queries:
1. Execute custom Cypher queries in the BloodHound CE search bar:
// Find shortest path from owned principals to Domain Admins
MATCH p=shortestPath((n {owned:true})-[*1..]->(m:Group {name:"DOMAIN ADMINS@DOMAIN.LOCAL"}))
RETURN p
// Find Kerberoastable users with path to DA
MATCH (u:User {hasspn:true})
MATCH p=shortestPath((u)-[*1..]->(g:Group {name:"DOMAIN ADMINS@DOMAIN.LOCAL"}))
RETURN p
// Find computers with sessions of DA members
MATCH (c:Computer)-[:HasSession]->(u:User)-[:MemberOf*1..]->(g:Group {name:"DOMAIN ADMINS@DOMAIN.LOCAL"})
RETURN c.name, u.name
// Find ACL-based attack paths (GenericAll, WriteDACL, GenericWrite)
MATCH p=(u:User)-[:GenericAll|GenericWrite|WriteDacl|WriteOwner|ForceChangePassword*1..]->(t)
WHERE u.owned = true
RETURN p
// Find users who can DCSync
MATCH (u)-[:MemberOf*0..]->()-[:DCSync|GetChanges|GetChangesAll*1..]->(d:Domain)
RETURN u.name, d.name
// Find computers with LAPS but readable by non-admins
MATCH (c:Computer {haslaps:true})
MATCH p=(u:User)-[:ReadLAPSPassword]->(c)
RETURN p1. Score identified attack paths by:
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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