AI Security Engineer – AI Guardrails / LLM Security
Job description
Role Overview
We are looking for an experienced AI Security Engineer to design, implement, and secure an enterprise-wide AI Guardrails platform supporting AI-enabled applications.
The role will focus on delivering centralised, consistent, and auditable AI security controls, leveraging AWS EKS, GPU-enabled infrastructure, and AI Gateway integration. The platform will support high-performance model inference, unified administration, and a multi-Availability Zone (Multi-AZ), high-availability architecture.
Key Responsibilities
- Design, develop, and implement AI Security Guardrails to protect enterprise AI applications and Large Language Models (LLMs).
- Deploy and manage AI security infrastructure using AWS EKS, Kubernetes, and GPU-enabled compute environments.
- Establish secure deployment architectures, governance controls, and integration with AI Gateway platforms.
- Conduct AI security assessments, threat modelling, architecture reviews, and AI Red Teaming.
- Identify and mitigate AI-specific threats, including prompt injection, data leakage, model poisoning, insecure outputs, model theft, supply chain vulnerabilities, and Agentic AI risks.
- Assess and secure Agentic AI systems, Model Context Protocol (MCP) integrations, and LLM applications.
- Implement AI model scanning, automated security testing, and runtime security controls.
- Develop security automation and integrations using Python, REST APIs, and cloud-native technologies.
- Integrate security controls into DevSecOps, CI/CD pipelines, and Infrastructure as Code (IaC) workflows.
- Produce technical documentation, security assessments, architecture designs, and operational procedures.
- Collaborate with engineering, cloud, cybersecurity, and AI teams to ensure secure and scalable platform delivery.
Must-Have Requirements
- Degree in Computer Science, Information Technology, or a related discipline.
- At least 6 years of experience in Cybersecurity, Application Security, Cloud Security, Platform Security, or Secure Software Engineering.
- Minimum 2 years of hands-on experience in AI Security, Generative AI Security, LLM Security, or AI/ML Security within an enterprise environment.
- Experience securing LLMs and AI applications, including models such as GPT, Claude, Llama, or Gemini.
- Strong knowledge of AI security threats, AI Guardrails, AI Red Teaming, model scanning, risk assessments, and threat modelling.
- Experience securing Agentic AI applications and Model Context Protocol (MCP) ecosystems.
- Experience with cloud AI platforms such as AWS Bedrock, AWS SageMaker, Azure AI Foundry/Azure ML, or Google Vertex AI.
- Strong programming skills in Python and at least one additional language: Java, Go, C#, or C++.
- Good understanding of REST APIs, JSON, authentication protocols, and API security.
- Experience with DevSecOps, CI/CD, Infrastructure as Code (IaC), GitHub/GitLab, and automated security testing.
- Hands-on experience with Docker, Kubernetes, and cloud-native deployments.
- Knowledge of SAST, DAST, SCA, secrets management, software supply chain security, and secure development practices.
- Strong analytical, troubleshooting, documentation, communication, and stakeholder management skills.
- Experience in banking, financial services, asset management, or regulated environments.
- Experience with Databricks and Databricks AI Security Framework (DASF 2.0).
- Knowledge of OWASP Top 10 for LLM Applications, OWASP Agentic AI Security, NIST AI RMF, MITRE ATLAS, and CSA AI Controls Framework.
- Exposure to AI security platforms such as Operant AI, HiddenLayer, Protect AI, Prompt Security, Palo Alto Prisma AIRS, or NVIDIA NeMo Guardrails.
- Experience with AI Gateway, AI observability, AI governance, model risk management, and LLM evaluation frameworks.
- Familiarity with RAG architectures, vector databases, MLflow, Snowflake, and Databricks.
- Experience working in Agile, Scrum, DevOps, MLOps, or SAFe environments.
- Certifications such as CISSP, CISM, CCSP, CCSK, CEH, GIAC, or relevant Cloud/AI Security certifications.
Key Technologies
AI Guardrails | LLM Security | Agentic AI | MCP | Python | AWS EKS | Kubernetes | Docker | AWS Bedrock | SageMaker | Azure AI Foundry | Vertex AI | AI Gateway | REST APIs | DevSecOps | CI/CD | IaC | GitHub/GitLab | SAST | DAST | SCA | AI Red Teaming | NVIDIA NeMo Guardrails
Skills mentioned
- Agentic AI
- AI
- Automation
- AWS
- AWS Bedrock
- Azure
- CI Cd
- Claude
- Cloud
- Cloud Native
- Cloud Security
- C++
- C#
- Cybersecurity
- Dast
- Databricks
- Devsecops
- Docker
- Eks
- Generative AI
- Github
- Gitlab
- Golang
- Infrastructure As Code
- Java
- Json
- Kubernetes
- LLM
- Llmops
- Machine Learning
- Mcp
- Owasp
- Python
- Reporting & Documentation
- Rest
- Risk Management
- Sagemaker
- Sast
- Supply Chain Management
- Vertex AI
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