Enterprise AI Governance & Trust Layer Engineer

Jobgether SRL

United States

Remote

USD 140,000 - 210,000

Full time

4 days ago
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Benefits offered by this job

Fully remote
Offshore model
AI governance focus
Generative AI security exposure
Collaborative security teams
Technical ownership

Job summary

Jobgether SRL seeks an Enterprise AI Governance & Trust Layer Engineer for a remote US-based role. You will design trust layers for enterprise data with LLMs, implement real-time PII masking, and build policy-driven guardrails to meet GDPR/CCPA/HIPAA.

Collaboration with security and data teams is essential to strengthen enterprise AI safety. Ideal candidates have 5–9 years in engineering, solid Python/regex skills, and a CISSP or comparable security certification.

Qualifications

  • 5–9 years of engineering experience with 3+ years in AI safety, privacy, governance, or security pipelines.
  • Strong Python and regex skills, data classification, API design, and cloud security frameworks.
  • Understanding of AI security risks including prompt injection, data leakage, and zero-data-retention models.
  • Experience building privacy layers and governance controls between systems and LLM apps.
  • Authentication/authorization, secure API design, and enterprise access-control knowledge.
  • Ability to translate privacy requirements into automated guardrails.
  • Collaborative ability with security and data teams; strong analytical problem solving.
  • Mandatory CISSP, CDP, or similar cloud security cert.

Responsibilities

  • Design and deploy enterprise AI trust layers and governance middleware.
  • Implement real-time PII detection and masking using regex/NER.
  • Develop policy-as-code guardrails for privacy and compliance (GDPR, CCPA, HIPAA).
  • Build immutable AI transaction audit trails for monitoring and forensics.
  • Implement toxicity, bias, and content-safety controls with moderation models.
  • Defend against prompt injections, jailbreaks, and malicious payloads.
  • Configure secure API proxy architectures, OAuth2, RBAC, and access controls.
  • Collaborate with security and data teams to strengthen governance in workflows.

Skills

Python
Regular expressions
Automated data classification
API architecture
Cloud security

Education

CISSP, CDP or cloud security cert

Job description

This position is listed on behalf of a partner company, who manages all applications and next steps. Our partner is looking for a Enterprise AI Governance & Trust Layer Engineer based in United States.

This is a remote engineering role focused on securing and governing enterprise use of generative AI.

You'll design the trust and privacy layers that control how sensitive corporate data flows to and from large language models.

The role combines AI security, data privacy, cloud security, API architecture, and compliance engineering.

You'll build real-time protections for PII, prompt injection, harmful content, unauthorized access, and policy violations.

You'll also establish auditability and monitoring so AI interactions can be traced, reviewed, and governed effectively.

Working closely with security and data engineering teams, you'll help create resilient guardrails for enterprise AI environments.

This is a high-impact opportunity for an experienced engineer who wants to shape secure and responsible AI infrastructure.

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Accountabilities
  • Design and deploy enterprise AI trust layers and governance middleware that establish secure data boundaries between internal systems, enterprise applications, and foundational LLMs.

  • Implement real-time PII detection and masking using regular expressions, Named Entity Recognition (NER), tokenization, and related data-classification technologies.

  • Develop policy-as-code guardrails for data privacy, compliance, and sovereignty requirements, including frameworks aligned with regulations such as GDPR, CCPA, and HIPAA.

  • Build automated and immutable AI transaction audit trails covering model inputs and outputs, token usage, access activity, and other information required for monitoring and forensic analysis.

  • Implement toxicity, bias, and content-safety controls using moderation models and classification gates to prevent harmful or non-compliant outputs.

  • Develop defenses against prompt injection, jailbreaks, malicious payloads, and attempts to override system instructions through secure input parsing and validation mechanisms.

  • Configure secure API proxy architectures, OAuth 2.0 authentication and validation flows, RBAC, and centralized access controls across integrated AI systems.

  • Collaborate with security, data engineering, and other technical teams to integrate governance controls into enterprise AI workflows and continuously strengthen the overall security posture.

Requirements
  • 5--9 years of overall engineering experience, including at least 3 years specifically designing, building, and maintaining AI safety, privacy, governance, or security pipelines.

  • Strong proficiency in Python, regular expressions, automated data classification, API architecture, and cloud security frameworks.

  • Demonstrated understanding of AI security risks, including prompt injection, jailbreaks, data leakage, data drift, token transmission constraints, and zero-data-retention API models.

  • Experience engineering privacy layers, governance controls, or security trust layers between enterprise systems and LLM-based applications.

  • Strong understanding of authentication, authorization, secure API design, data protection, and enterprise access-control principles.

  • Ability to translate privacy and security requirements into practical technical controls and automated guardrails.

  • Strong analytical and problem-solving skills, with the ability to investigate complex AI security and data-flow issues.

  • Excellent collaboration and communication skills when working with security, data engineering, and other technical stakeholders.

  • A CISSP, Certified DevSecOps Professional (CDP), or relevant cloud security specialty certification is mandatory.

  • Experience with Salesforce Einstein Trust Layer or comparable enterprise AI safety platforms is an advantage.

  • Familiarity with vector embeddings and custom text-classification models for identifying nuanced enterprise intellectual-property or data leaks is desirable.

Benefits
  • Fully remote working arrangement.

  • Contract engagement with an offshore work model.

  • Opportunity to work on enterprise AI governance, privacy, security, and trust infrastructure.

  • Exposure to generative AI security challenges involving LLMs, data protection, compliance, and adversarial inputs.

  • Opportunity to collaborate with security and data engineering teams on enterprise-scale AI controls.

  • Role with significant technical ownership across AI governance middleware, privacy boundaries, monitoring, and security architecture.

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How Jobgether works:

We use an AI-powered matching process to ensure your application is reviewed quickly, objectively, and fairly against the role's core requirements. Our system identifies the top-fitting candidates, and this shortlist is then shared directly with the hiring company. The final decision and next steps (interviews, assessments) are managed by their internal team.

We appreciate your interest and wish you the best!

Why Apply Through Jobgether?

Data Privacy Notice: By submitting your application, you acknowledge that Jobgether will process your personal data to evaluate your candidacy and share relevant information with the hiring employer. This processing is based on legitimate interest and pre-contractual measures under applicable data protection laws (including GDPR). You may exercise your rights (access, rectification, erasure, objection) at any time.

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