Protect agentic AI systems from adversarial input, unsafe tool execution, data leakage, and privilege abuse with layered security controls.
AI agents introduce a unique threat surface. Apply STRIDE specifically to agentic components:
| Threat | Agent-Specific Example | Control |
|---|---|---|
| Spoofing | Attacker crafts input that mimics a trusted internal tool response | Signed tool responses, HMAC verification |
| Tampering | Prompt injection modifies agent reasoning mid-chain | Input validation, prompt armoring |
| Repudiation | Agent takes destructive action with no audit trail | Immutable structured logging |
| Information Disclosure | Agent leaks PII, secrets, or internal architecture in responses | Output filtering, content classifiers |
| Denial of Service | Adversarial prompt causes infinite tool loops or token exhaustion | Rate limits, token budgets, circuit breakers |
| Elevation of Privilege | Agent escalates from read-only to write via chained tool calls | RBAC per tool, least-privilege scoping |
Prompt Injection — Untrusted content (user input, web scrapes, document contents) manipulates the agent's system prompt or reasoning chain to execute unintended actions.
Tool Abuse — The agent calls tools in sequences or with parameters the designer did not anticipate, achieving effects beyond its intended scope.
Data Exfiltration — The agent encodes sensitive data (credentials, PII, internal IPs) into its responses, tool calls, or outbound HTTP requests.
Cross-Tenant Leakage — In multi-tenant deployments, context from one tenant's session bleeds into another through shared memory, vector stores, or cache.
Privilege Escalation — The agent chains low-privilege tool calls to achieve high-privilege outcomes (e.g., read config -> extract credentials -> call admin API).
Every input to an agent must be sanitized before it reaches the model or any tool. This includes user messages, tool outputs being fed back, and retrieved documents.
import re
from dataclasses import dataclass
from enum import Enum
class RiskLevel(Enum):
LOW = "low"
MEDIUM = "medium"
HIGH = "high"
CRITICAL = "critical"
@dataclass
class ValidationResult:
is_safe: bool
risk_level: RiskLevel
matched_rules: list[str]
sanitized_input: str
INJECTION_PATTERNS = [
(r"ignore\s+(all\s+)?(previous|prior|above)\s+(instructions|prompts|rules)", "instruction_override"),
(r"you\s+are\s+now\s+(a|an|the)\s+", "role_hijack"),
(r"system\s*:\s*", "system_prompt_inject"),
(r"<\|?(system|im_start|endoftext)\|?>", "control_token_inject"),
(r"\[INST\]|\[\/INST\]|<<SYS>>", "template_inject"),
(r"(?:execute|run|eval)\s*\(", "code_execution_attempt"),
(r"(?:curl|wget|nc|ncat)\s+", "network_command_inject"),
(r"(?:rm\s+-rf|mkfs|dd\s+if=|chmod\s+777)", "destructive_command"),
(r"(?:\/etc\/passwd|\/etc\/shadow|\.env\b|\.ssh\/)", "path_traversal"),
(r"(?:BEGIN\s+(?:RSA|DSA|EC)\s+PRIVATE\s+KEY)", "secret_exfil_attempt"),
]
def validate_agent_input(user_input: str, max_length: int = 4096) -> ValidationResult:
"""Validate and sanitize input before passing to agent."""
matched = []
risk = RiskLevel.LOW
# Length check
if len(user_input) > max_length:
matched.append("input_too_long")
risk = RiskLevel.MEDIUM
# Null byte and control character removal
sanitized = user_input.replace("\x00", "")
sanitized = re.sub(r"[\x01-\x08\x0b\x0c\x0e-\x1f]", "", sanitized)
# Pattern matching
for pattern, rule_name in INJECTION_PATTERNS:
if re.search(pattern, sanitized, re.IGNORECASE):
matched.append(rule_name)
risk = RiskLevel.HIGH
# Stacked injection detection (multiple suspicious patterns)
if len(matched) >= 3:
risk = RiskLevel.CRITICAL
is_safe = risk in (RiskLevel.LOW, RiskLevel.MEDIUM)
return ValidationResult(
is_safe=is_safe,
risk_level=risk,
matched_rules=matched,
sanitized_input=sanitized[:max_length] if is_safe else "",
)
Use a lightweight classifier as middleware before the agent processes any input:
from functools import wraps
from typing import Callable
def input_guard(validator: Callable = validate_agent_input):
"""Decorator that guards agent entry points against unsafe input."""
def decorator(func):
@wraps(func)
async def wrapper(user_input: str, *args, **kwargs):
result = validator(user_input)
if result.risk_level == RiskLevel.CRITICAL:
await log_security_event(
event="input_blocked",
risk=result.risk_level.value,
rules=result.matched_rules,
input_hash=hashlib.sha256(user_input.encode()).hexdigest(),
)
raise InputRejectedError(
f"Input blocked: matched {result.matched_rules}"
)
if result.risk_level == RiskLevel.HIGH:
await log_security_event(
event="input_flagged",
risk=result.risk_level.value,
rules=result.matched_rules,
)
# Allow through but flag for review
kwargs["_security_flags"] = result.matched_rules
return await func(result.sanitized_input, *args, **kwargs)
return wrapper
return decorator
# Usage
@input_guard()
async def handle_user_message(message: str, session_id: str, **kwargs):
"""Process a validated user message through the agent."""
flags = kwargs.get("_security_flags", [])
if flags:
# Route to sandboxed execution path
return await agent.run_sandboxed(message, session_id)
return await agent.run(message, session_id)
Never let an agent execute tools directly on the host. Isolate every tool invocation inside a sandbox.
# docker-compose.agent-sandbox.yml
version: "3.8"
services:
agent-sandbox:
image: agent-tools:latest
read_only: true
security_opt:
- no-new-privileges:true
- seccomp:seccomp-profile.json
cap_drop:
- ALL
cap_add:
- NET_BIND_SERVICE # Only if tool needs network
tmpfs:
- /tmp:size=64M,noexec,nosuid
mem_limit: 512m
cpus: "0.5"
pids_limit: 64
networks:
- sandbox-net
environment:
- TOOL_TIMEOUT=30
- MAX_OUTPUT_BYTES=65536
volumes:
- type: bind
source: ./tool-workspace
target: /workspace
read_only: false
dns:
- 127.0.0.1 # Block external DNS by default
networks:
sandbox-net:
driver: bridge
internal: true # No external network access
# Install gVisor runsc runtime
curl -fsSL https://gvisor.dev/archive.key | sudo gpg --dearmor -o /usr/share/keyrings/gvisor-archive-keyring.gpg
echo "deb [signed-by=/usr/share/keyrings/gvisor-archive-keyring.gpg] https://storage.googleapis.com/gvisor/releases release main" | \
sudo tee /etc/apt/sources.list.d/gvisor.list
sudo apt-get update && sudo apt-get install -y runsc
# Configure Docker to use gVisor
cat <<'EOF' | sudo tee /etc/docker/daemon.json
{
"runtimes": {
"runsc": {
"path": "/usr/bin/runsc",
"runtimeArgs": [
"--network=none",
"--directfs=false"
]
}
}
}
EOF
sudo systemctl restart docker
# Run agent sandbox with gVisor
docker run --runtime=runsc --rm \
--read-only \
--memory=512m \
--cpus=0.5 \
--pids-limit=64 \
agent-tools:latest \
python /tools/execute.py --tool="$TOOL_NAME" --args="$TOOL_ARGS"
from dataclasses import dataclass, field
@dataclass
class ToolPolicy:
name: str
allowed_args: dict[str, type] # parameter name -> expected type
max_calls_per_session: int = 10
requires_approval: bool = False
allowed_patterns: list[str] = field(default_factory=list)
blocked_patterns: list[str] = field(default_factory=list)
TOOL_ALLOWLIST: dict[str, ToolPolicy] = {
"read_file": ToolPolicy(
name="read_file",
allowed_args={"path": str},
max_calls_per_session=20,
allowed_patterns=[r"^/workspace/", r"^/data/public/"],
blocked_patterns=[r"\.env$", r"\.key$", r"\.pem$", r"/etc/", r"/proc/"],
),
"run_query": ToolPolicy(
name="run_query",
allowed_args={"sql": str, "database": str},
max_calls_per_session=5,
allowed_patterns=[r"^SELECT\s", r"^EXPLAIN\s"],
blocked_patterns=[r"\bDROP\b", r"\bDELETE\b", r"\bUPDATE\b", r"\bINSERT\b", r"\bALTER\b"],
),
"http_request": ToolPolicy(
name="http_request",
allowed_args={"url": str, "method": str},
max_calls_per_session=10,
requires_approval=True,
allowed_patterns=[r"^https://api\.internal\."],
blocked_patterns=[r"^https?://169\.254\.", r"^https?://metadata\.google\."],
),
"execute_code": ToolPolicy(
name="execute_code",
allowed_args={"code": str, "language": str},
max_calls_per_session=3,
requires_approval=True,
blocked_patterns=[r"import\s+subprocess", r"import\s+os", r"__import__", r"eval\(", r"exec\("],
),
}
class ToolGatekeeper:
def __init__(self, allowlist: dict[str, ToolPolicy]):
self.allowlist = allowlist
self.call_counts: dict[str, int] = {}
async def authorize(self, tool_name: str, args: dict) -> bool:
if tool_name not in self.allowlist:
await log_security_event(
event="tool_denied_not_in_allowlist",
tool=tool_name,
)
return False
policy = self.allowlist[tool_name]
# Check call count
count = self.call_counts.get(tool_name, 0)
if count >= policy.max_calls_per_session:
await log_security_event(
event="tool_denied_rate_limit",
tool=tool_name,
count=count,
)
return False
# Validate argument types
for arg_name, expected_type in policy.allowed_args.items():
if arg_name in args and not isinstance(args[arg_name], expected_type):
return False
# Check patterns against all string arguments
for arg_value in args.values():
if not isinstance(arg_value, str):
continue
# Must match at least one allowed pattern (if any defined)
if policy.allowed_patterns:
if not any(re.search(p, arg_value, re.IGNORECASE) for p in policy.allowed_patterns):
return False
# Must not match any blocked pattern
if any(re.search(p, arg_value, re.IGNORECASE) for p in policy.blocked_patterns):
await log_security_event(
event="tool_denied_blocked_pattern",
tool=tool_name,
arg_value_hash=hashlib.sha256(arg_value.encode()).hexdigest(),
)
return False
self.call_counts[tool_name] = count + 1
return True
Use this skill when:
# Read-only first: inventory before any active step.
which <tool> && <tool> --help | head -n 20
Adapted from BagelHole/DevOps-Security-Agent-Skills (MIT); frontmatter, When to Use/Limitations, and safety boundaries added for upstream compliance. Docs-only import: helper scripts and templates not bundled.