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Começarai-safety
AI safety and responsible AI practices
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Atualizado25 de maio de 2026 às 21:36
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AI safety and responsible AI practices
| name | ai-safety |
| description | AI safety and responsible AI practices |
| category | ai |
| tags | ["ai-safety","responsible-ai","ethics","security","governance"] |
| models | ["sonnet","opus"] |
| version | 1.0.0 |
| created | "2026-05-14T00:00:00.000Z" |
Implement responsible AI practices including guardrails, monitoring, and ethical guidelines.
from guardrails import Guard
from guardrails.validators import Validator
class NoPIIValidator(Validator):
def validate(self, value: str, metadata: dict) -> dict:
import re
# Check for emails, SSNs, credit cards
patterns = {
"email": r'\b[\w.+-]+@[\w-]+\.[\w.]+\b',
"ssn": r'\b\d{3}-\d{2}-\d{4}\b',
"credit_card": r'\b\d{4}[- ]?\d{4}[- ]?\d{4}[- ]?\d{4}\b'
}
found = {name: re.findall(pat, value)
for name, pat in patterns.items()
if re.search(pat, value)}
if found:
return {"valid": False, "error": f"PII detected: {found}"}
return {"valid": True}
# Content moderation guard
content_guard = Guard().use(NoPIIValidator())
# Usage
result = content_guard.validate("My email is user@example.com")
print(result.error) # "PII detected: {'email': ['user@example.com']}"
AI safety spans: prompt injection prevention, PII/redaction, content moderation, output validation, rate limiting, audit logging, and bias monitoring. Defense in depth — multiple layers of protection.
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