MITRE ATT&CK T1106: Native API
When to use this skill
Use this skill when the task involves T1106, Native API, enterprise ATT&CK, TTP mapping, detection engineering, hunting, incident-response enrichment, control validation, or authorized adversary-emulation planning. Treat it as a defensive analysis aid: keep outputs focused on understanding, detecting, mitigating, and safely validating this ATT&CK technique.
Technique context
- ATT&CK domain: enterprise
- ATT&CK ID: T1106
- Technique name: Native API
- Type: technique
- ATT&CK URL: https://attack.mitre.org/techniques/T1106
- Tactics: execution
- Platforms: Linux, macOS, Windows
- Required permissions: Not specified
- Effective permissions: Not specified
- Defenses bypassed: Not specified
ATT&CK description
Adversaries may interact with the native OS application programming interface (API) to execute behaviors. Native APIs provide a controlled means of calling low-level OS services within the kernel, such as those involving hardware/devices, memory, and processes.(Citation: NT API Windows)(Citation: Linux Kernel API) These native APIs are leveraged by the OS during system boot (when other system components are not yet initialized) as well as carrying out tasks and requests during routine operations.
Adversaries may abuse these OS API functions as a means of executing behaviors. Similar to Command and Scripting Interpreter, the native API and its hierarchy of interfaces provide mechanisms to interact with and utilize various components of a victimized system.
Native API functions (such as NtCreateProcess) may be directed invoked via system calls / syscalls, but these features are also often exposed to user-mode applications via interfaces and libraries.(Citation: OutFlank System Calls)(Citation: CyberBit System Calls)(Citation: MDSec System Calls) For example, functions such as the Windows API CreateProcess() or GNU fork() will allow programs and scripts to start other processes.(Citation: Microsoft CreateProcess)(Citation: GNU Fork) This may allow API callers to execute a binary, run a CLI command, load modules, etc. as thousands of similar API functions exist for various system operations.(Citation: Microsoft Win32)(Citation: LIBC)(Citation: GLIBC)
Higher level software frameworks, such as Microsoft .NET and macOS Cocoa, are also available to interact with native APIs. These frameworks typically provide language wrappers/abstractions to API functionalities and are designed for ease-of-use/portability of code.(Citation: Microsoft NET)(Citation: Apple Core Services)(Citation: MACOS Cocoa)(Citation: macOS Foundation)
Adversaries may use assembly to directly or in-directly invoke syscalls in an attempt to subvert defensive sensors and detection signatures such as user mode API-hooks.(Citation: Redops Syscalls) Adversaries may also attempt to tamper with sensors and defensive tools associated with API monitoring, such as unhooking monitored functions via Disable or Modify Tools.
Agent workflow
- Clarify scope: identify the system, asset class, log sources, cloud or endpoint platform, and whether the user wants triage, detection, coverage assessment, or safe emulation planning.
- Load bundled resources as needed: use
references/technique-profile.json for structured metadata, references/detection-and-mitigation.md for triage and telemetry guidance, references/known-threat-context.md for ATT&CK relationship context, and templates/ for repeatable outputs.
- Map observations to ATT&CK: compare the user's evidence to the ATT&CK description, tactics, platforms, and known procedure patterns before asserting a match.
- Produce defensive outputs: prioritize hypotheses, telemetry requirements, detection logic ideas, validation steps, containment guidance, and mitigations.
- Preserve uncertainty: distinguish confirmed evidence, plausible indicators, assumptions, and gaps. Recommend what to collect next.
- Stay safe: do not provide malware, credential theft, persistence, evasion, destructive automation, or unauthorized exploitation instructions. For adversary emulation, keep steps bounded to approved lab or control-validation contexts and omit operational abuse details.
Bundled resources
references/technique-profile.json: machine-readable ATT&CK metadata for this technique.
references/detection-and-mitigation.md: detection notes, telemetry checklist, triage questions, mitigation candidates, and false-positive considerations.
references/known-threat-context.md: ATT&CK relationship context with attribution cautions.
templates/detection-brief.md: detection engineering brief template.
templates/hunt-plan.md: threat hunt plan template.
templates/incident-response-note.md: incident response note template.
templates/coverage-assessment.md: ATT&CK coverage assessment template.
scripts/render_brief.py: local helper that renders a Markdown defensive brief from technique-profile.json.
assets/output-schema.json: JSON schema for structured technique analysis outputs.
To generate a quick brief, run python scripts/render_brief.py --output brief.md from inside this skill directory, or adapt the templates directly.
Detection guidance
No ATT&CK detection guidance was present in the source STIX object.
Useful telemetry and data sources
- Not specified in the STIX object.
Mitigations to consider
- Behavior Prevention on Endpoint
- Execution Prevention
Known threat context
Use these examples only as contextual leads, not as proof that an observed event is this technique:
- ADVSTORESHELL (malware)
- ANELLDR (malware)
- APT37 (intrusion-set)
- APT38 (intrusion-set)
- Akira (malware)
- Amadey (malware)
- AppleSeed (malware)
- Aria-body (malware)
- AsyncRAT (tool)
- Attor (malware)
- Avaddon (malware)
- AvosLocker (malware)
- BADHATCH (malware)
- BADNEWS (malware)
- BBK (malware)
- BOOKWORM (malware)
- Babuk (malware)
- BackConfig (malware)
- Bad Rabbit (malware)
- Bandook (malware)
Recommended output pattern
When responding with this skill, structure the answer as:
- Assessment: whether the evidence supports this ATT&CK mapping and why.
- Evidence: specific indicators, logs, behaviors, and assumptions.
- Detection: telemetry sources, analytic logic, and tuning considerations.
- Response: containment, eradication, recovery, and validation actions.
- Coverage gaps: missing logs, sensors, controls, or environmental details.
- References: include the ATT&CK URL and any user-provided evidence references.
ATT&CK contributors
- Gordon Long, LegioX/Zoom, asaurusrex
- Stefan Kanthak
- Tristan Madani (Cybereason)
1---2name: attack-ent-t1106-native-api3description: Analyze MITRE ATT&CK T1106 Native API in the enterprise matrix. Use for TTP triage, detection engineering, hunting, defensive emulation planning, mitigations, incident response mapping, ATT&CK coverage, or questions mentioning T1106, Native API, or enterprise ATT&CK. Adversaries may interact with the native OS application programming interface (API) to execute behaviors.4license: MITRE ATT&CK Terms of Use apply to ATT&CK-derived content. See h5---67# MITRE ATT&CK T1106: Native API89## When to use this skill1011Use this skill when the task involves T1106, Native API, enterprise ATT&CK, TTP mapping, detection engineering, hunting, incident-response enrichment, control validation, or authorized adversary-emulation planning. Treat it as a defensive analysis aid: keep outputs focused on understanding, detecting, mitigating, and safely validating this ATT&CK technique.1213## Technique context1415- ATT&CK domain: enterprise16- ATT&CK ID: T110617- Technique name: Native API18- Type: technique19- ATT&CK URL: https://attack.mitre.org/techniques/T110620- Tactics: execution21- Platforms: Linux, macOS, Windows22- Required permissions: Not specified23- Effective permissions: Not specified24- Defenses bypassed: Not specified2526## ATT&CK description2728Adversaries may interact with the native OS application programming interface (API) to execute behaviors. Native APIs provide a controlled means of calling low-level OS services within the kernel, such as those involving hardware/devices, memory, and processes.(Citation: NT API Windows)(Citation: Linux Kernel API) These native APIs are leveraged by the OS during system boot (when other system components are not yet initialized) as well as carrying out tasks and requests during routine operations.2930Adversaries may abuse these OS API functions as a means of executing behaviors. Similar to [Command and Scripting Interpreter](https://attack.mitre.org/techniques/T1059), the native API and its hierarchy of interfaces provide mechanisms to interact with and utilize various components of a victimized system.3132Native API functions (such as <code>NtCreateProcess</code>) may be directed invoked via system calls / syscalls, but these features are also often exposed to user-mode applications via interfaces and libraries.(Citation: OutFlank System Calls)(Citation: CyberBit System Calls)(Citation: MDSec System Calls) For example, functions such as the Windows API <code>CreateProcess()</code> or GNU <code>fork()</code> will allow programs and scripts to start other processes.(Citation: Microsoft CreateProcess)(Citation: GNU Fork) This may allow API callers to execute a binary, run a CLI command, load modules, etc. as thousands of similar API functions exist for various system operations.(Citation: Microsoft Win32)(Citation: LIBC)(Citation: GLIBC)3334Higher level software frameworks, such as Microsoft .NET and macOS Cocoa, are also available to interact with native APIs. These frameworks typically provide language wrappers/abstractions to API functionalities and are designed for ease-of-use/portability of code.(Citation: Microsoft NET)(Citation: Apple Core Services)(Citation: MACOS Cocoa)(Citation: macOS Foundation)3536Adversaries may use assembly to directly or in-directly invoke syscalls in an attempt to subvert defensive sensors and detection signatures such as user mode API-hooks.(Citation: Redops Syscalls) Adversaries may also attempt to tamper with sensors and defensive tools associated with API monitoring, such as unhooking monitored functions via [Disable or Modify Tools](https://attack.mitre.org/techniques/T1685).3738## Agent workflow39401. Clarify scope: identify the system, asset class, log sources, cloud or endpoint platform, and whether the user wants triage, detection, coverage assessment, or safe emulation planning.412. Load bundled resources as needed: use `references/technique-profile.json` for structured metadata, `references/detection-and-mitigation.md` for triage and telemetry guidance, `references/known-threat-context.md` for ATT&CK relationship context, and `templates/` for repeatable outputs.423. Map observations to ATT&CK: compare the user's evidence to the ATT&CK description, tactics, platforms, and known procedure patterns before asserting a match.434. Produce defensive outputs: prioritize hypotheses, telemetry requirements, detection logic ideas, validation steps, containment guidance, and mitigations.445. Preserve uncertainty: distinguish confirmed evidence, plausible indicators, assumptions, and gaps. Recommend what to collect next.456. Stay safe: do not provide malware, credential theft, persistence, evasion, destructive automation, or unauthorized exploitation instructions. For adversary emulation, keep steps bounded to approved lab or control-validation contexts and omit operational abuse details.4647## Bundled resources4849- `references/technique-profile.json`: machine-readable ATT&CK metadata for this technique.50- `references/detection-and-mitigation.md`: detection notes, telemetry checklist, triage questions, mitigation candidates, and false-positive considerations.51- `references/known-threat-context.md`: ATT&CK relationship context with attribution cautions.52- `templates/detection-brief.md`: detection engineering brief template.53- `templates/hunt-plan.md`: threat hunt plan template.54- `templates/incident-response-note.md`: incident response note template.55- `templates/coverage-assessment.md`: ATT&CK coverage assessment template.56- `scripts/render_brief.py`: local helper that renders a Markdown defensive brief from `technique-profile.json`.57- `assets/output-schema.json`: JSON schema for structured technique analysis outputs.5859To generate a quick brief, run `python scripts/render_brief.py --output brief.md` from inside this skill directory, or adapt the templates directly.6061## Detection guidance6263No ATT&CK detection guidance was present in the source STIX object.6465## Useful telemetry and data sources6667- Not specified in the STIX object.6869## Mitigations to consider7071- Behavior Prevention on Endpoint72- Execution Prevention7374## Known threat context7576Use these examples only as contextual leads, not as proof that an observed event is this technique:7778- ADVSTORESHELL (malware)79- ANELLDR (malware)80- APT37 (intrusion-set)81- APT38 (intrusion-set)82- Akira (malware)83- Amadey (malware)84- AppleSeed (malware)85- Aria-body (malware)86- AsyncRAT (tool)87- Attor (malware)88- Avaddon (malware)89- AvosLocker (malware)90- BADHATCH (malware)91- BADNEWS (malware)92- BBK (malware)93- BOOKWORM (malware)94- Babuk (malware)95- BackConfig (malware)96- Bad Rabbit (malware)97- Bandook (malware)9899## Recommended output pattern100101When responding with this skill, structure the answer as:102103- Assessment: whether the evidence supports this ATT&CK mapping and why.104- Evidence: specific indicators, logs, behaviors, and assumptions.105- Detection: telemetry sources, analytic logic, and tuning considerations.106- Response: containment, eradication, recovery, and validation actions.107- Coverage gaps: missing logs, sensors, controls, or environmental details.108- References: include the ATT&CK URL and any user-provided evidence references.109110## ATT&CK contributors111112- Gordon Long, LegioX/Zoom, asaurusrex113- Stefan Kanthak114- Tristan Madani (Cybereason)