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Playtech

AI Security Engineer (System Security)

RemoteUkraine only
Published
Role
Security
Employment
Full-time
Company size
Enterprise
Salary not disclosed
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No BS summary

AI security engineer for infrastructure-heavy AI systems across on-prem and cloud. Needs cybersecurity/IT experience, Linux/networking/cloud/IAM/container security, LLM platforms, AI guardrails, CI/CD and IaC exposure. Regulated-environment experience in gaming, finance, or healthcare is required.

Core skills

AI securityLLM securityInfrastructure security

Required skills

LinuxNetworkingCloudIAMContainer securityAutomationSelf-hosted LLM deploymentCloud LLM platformsAzure FoundryAmazon BedrockGoogle VertexAIOllamaLMStudioOWASP Top 10 for LLM ApplicationsOWASP Top 10 for Agentic ApplicationsMITRE ATLASNIST AI RMFISO/IEC 42001CISA/NSA guidanceEU AI ActTerraformAnsibleCI/CD pipelines

Optional skills

CI/CD security gatesPythonBashMCPAgentic AIVibe codingAIBOMSBOM

What you'll do

  • Review the AI systems and infrastructure, including local and cloud LLM deployments, gateways, vector stores, and agentic / MCP components, and provide clear recommendations on required hardening measures and areas for improvement.
  • Assess existing guardrails and controls, such as input/output filtering, prompt-injection defenses, rate limiting, and authentication, against industry best practice, provide recommendations to strengthen their effectiveness and drive the implementation of improvements and new controls to ensure the secure and responsible use of AI.
  • Advise on secure-by-design AI architecture, reviewing team designs and deployments against recognized frameworks (OWASP, MITRE ATLAS, NIST AI RMF, ISO/IEC 42001).
  • Recommend and prioritize hardening across the infrastructure behind self-hosted and cloud-based LLMs, and guide teams through remediation.
  • Evaluate the AI supply chain, such as model provenance, AIBOM/SBOM, dependency and artifact scanning, and provide recommendations to address gaps (Including Vibe Coded Applications).
  • Define standards, reference patterns, and best-practice guidance to ensure teams across Playtech build and operate AI securely.
  • Review logging, observability, and detection coverage for AI workloads mapped to frameworks such as MITRE ATLAS, and recommend enhancements to ensure the SOC can effectively monitor and respond across the full AI attack surface.
  • Assess identity, access, and secrets management for models, tools, and data, advising on least-privilege improvements.
  • Support compliance in a regulated environment with audit-ready assessments, evidence, and documentation.
  • Drive innovation within the team — Investigate and where possible implement Agentic AI usage within the unit, to optimize time consuming activities (Chatbots, automation with Hermes or n8n etc)

What they require

  • Hold valid and relevant Certifications or equivalent, verifiable experience in the field of Cyber Security and/or Information Technology.
  • Bring solid infrastructure and security engineering experience — Linux, networking, cloud, IAM, container security and automation.
  • Know your way around both self-hosted LLM deployment and cloud LLM platforms (e.g. Azure Foundry, Amazon Bedrock, Google VertexAI, Ollama, LMStudio etc).
  • Can review and assess AI systems against best practice and clearly advise teams on what to harden, improve, or remediate on an ongoing basis.
  • Have prior knowledge of LLM-specific threats: prompt injection, sensitive-data disclosure, data/model poisoning, excessive agency, insecure output handling, supply-chain risk and how to mitigate them.
  • Have knowledge of some of the various AI security frameworks and Guidelines — OWASP Top 10 for LLM Applications (2025) and for Agentic Applications (2026), MITRE ATLAS, NIST AI RMF, ISO/IEC 42001, CISA/NSA guidance, and the EU AI Act — and how to translate them into controls.
  • Have prior experience in guardrail implementation and design evaluation, including prompt-injection defense, output validation, and hallucination mitigation.
  • Had exposure to using infrastructure-as-code (Terraform, Ansible) and CI/CD pipelines to make controls repeatable.
  • Have experience navigating, and working in regulated environments such as gaming, finance, or healthcare.
  • Have clear communication, presentation and collaboration skills — strong documentation skills and cross-team collaboration are central to this role.
  • Preferred: Hands-on experience building CI/CD security gates and guardrails — the role advises on these more than builds them, but practical experience helps you guide teams well.
  • Preferred: Hands-on experience securing MCP / agentic AI infrastructure and the governance of these tools.
  • Preferred: Hands-on experience with AI Enablement and optimizing workflows using agentic AI and “Vibe coding”.
  • Preferred: Familiarity with AIBOM / SBOM tooling and supply-chain security.
  • Preferred: Exposure to MLSecOps practices and AI red-teaming.
  • Preferred: Relevant certifications across cloud or emerging AI-security credentials.
  • Collaboration across teams
  • Ownership, curiosity, and a proactive approach to solving complex security challenges

Benefits

  • Continuous learning and the opportunity to grow into the role while working on AI security topics that are becoming increasingly important for the business.
  • Practical impact, with the chance to help shape Playtech’s AI future and support secure AI adoption across the company.

Playtech is a technology leader in the gambling industry delivering business intelligence-driven gambling software, services, content, and platform technology across casino, live casino, sports betting, virtual sports, bingo and poker.

🇬🇧 United KingdomGamblingEnterpriseplaytech.com/

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