AI Security Engineer
Job in
Denver, Denver County, Colorado, 80285, USA
Listed on 2026-07-20
Listing for:
Jobtailor
Full Time
position Listed on 2026-07-20
Job specializations:
-
IT/Tech
AI Engineer (Applied/Software), Cybersecurity, Information Security & Data Protection
Job Description & How to Apply Below
Responsibilities
- Establish and operationalize security controls for emerging Artificial Intelligence and Machine Learning capabilities across the enterprise.
- Embed security into AI solution design, protecting AI models and data pipelines, and enabling secure adoption of AI use cases across business and technology functions.
- Work closely with Digital, Data, AI, Security Architecture, Engineering, and Cyber Defense Operations teams to define secure AI architecture patterns, implement guardrails, and ensure AI platforms operate within client’s cybersecurity, risk, and governance standards.
- Define secure architecture patterns for AI and machine learning solutions, ensuring protection of models, training pipelines, inference environments, and supporting data flows.
- Establish secure integration patterns for AI services across enterprise applications, APIs, cloud platforms, and data environments.
- Review AI solution designs to ensure alignment with enterprise security architecture standards and secure-by-design principles.
- Identify, assess, and mitigate AI-specific threats including model poisoning, prompt injection, adversarial attacks, unauthorized model access, data leakage, and misuse of AI outputs.
- Define and implement security guardrails for AI model access, API usage, prompt controls, and secure interaction with enterprise data sources.
- Establish controls to protect sensitive training data, embeddings, prompts, and inference outputs across AI workflows.
- Support development of monitoring use cases for AI misuse, abnormal model behavior, unauthorized access, and suspicious data movement.
- 5–8 years of cybersecurity engineering or security architecture experience, with exposure to cloud security, data protection, or application security.
- Experience working with enterprise AI, machine learning, analytics platforms, or data-driven technology environments.
- Practical understanding of AI/ML deployment patterns, APIs, model lifecycle, and enterprise data integration.
- Experience with Microsoft Azure AI services, OpenAI integrations, Databricks, or enterprise AI platforms preferred.
- Familiarity with emerging AI governance frameworks and responsible AI standards.
- Experience with Secure AI controls embedded into enterprise AI initiatives without slowing adoption.
- Security certifications such as CISSP, CCSP, or cloud security certifications preferred.
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