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Agent guide: [/agents.md](https://www.wearedevelopers.com/agents.md). --- # AI Security Engineer - **Company:** Bright Vision Technologies - **Location:** Bolingbrook, IL, United States (Remote available) - **Experience:** Expert - **Salary:** $100,000.0 - $150,000.0 - **Contract:** Permanent contract - **Skills:** Training Data, Application Programming Interfaces (APIs), Artificial Intelligence, Software Applications, Cloud Computing Security, Cyber Security, Python (Programming Language), Machine Learning, Open Source Technology, AI Infrastructure, Data Logging, Data Processing, Large Language Models, Software Security, AI Platforms, Information Technology, Free and Open-Source Software, Machine Learning Operations - **Published:** July 4, 2026 - **Apply:** https://www.careerjet.com/jobad/us63696c3cbaf60887a2815c5883257cda ## About the Role * Bachelor's or Master's degree in Computer Science, Cybersecurity, or a related discipline. * Six or more years of security engineering experience, including significant work on AI or ML systems. * Strong understanding of LLM internals, modern AI architectures, and common failure modes. * Hands-on experience designing security controls for AI-powered applications. * Deep knowledge of application security, identity, and cryptography fundamentals. * Experience with threat modeling and security architecture review processes. * Familiarity with adversarial ML, prompt injection, and model abuse research. * Proficiency in Python and at least one systems language. * Strong understanding of cloud security and modern infrastructure controls. * Excellent written and verbal communication skills., * Publications, talks, or CTF participation in AI security topics. * Experience with red-teaming LLM-based products. * Familiarity with privacy-preserving ML techniques such as differential privacy. * Exposure to regulated industries with strict data handling requirements. * Open-source contributions to AI security tooling. ## Description Engagement: Long-term, multi-year, aligned to the Bright Vision SOW delivery roadmap Compensation: Competitive base salary commensurate with experience, plus benefits. Employment Terms & Visa Policy This is a 100% remote, full-time, direct W2 position with Bright Vision Technologies. This role is part of Bright Vision Technologies' in-house Statement of Work (SOW) engagement. The client, end customer, and employer for this position is Bright Vision Technologies - there is no third-party client, vendor, or implementation partner involved. We do not engage in C2C, 1099, or third-party arrangements for this role. BUT STRICTLY NO C2C/1099/3RD PARTY COMPANIES. ALL OUR ROLES ARE W2 AND NO 3RD PARTY BROKERING PLEASE. Candidates must be willing to work directly as a full-time W2 employee of Bright Vision Technologies and contribute to our in-house SOW deliverables. No new H1B sponsorship is available for this role. However, candidates who are currently on a valid H1B visa and require a transfer are welcome to apply. We will support H1B transfers for qualified candidates. For every role, a technical coding assessment is mandatory. Please apply only if you are confident in your technical abilities and hands-on experience., We are seeking an AI Security Engineer to lead the design and implementation of security controls, threat models, and incident response capabilities specifically tailored to AI and machine learning systems. The role addresses the unique security challenges posed by LLMs, model APIs, training data pipelines, and AI-powered applications, including prompt injection, model abuse, data exfiltration, and supply chain risks. The ideal candidate has strong security engineering fundamentals and a deep understanding of how modern AI systems work in practice, with hands-on experience designing defenses for both AI-powered applications and the AI infrastructure that supports them., * Define and implement security controls specifically targeting LLM and AI-powered application risks. * Build threat models for AI systems, including prompt injection, jailbreaks, data exfiltration, and abuse patterns. * Design and deploy guardrails, content filters, and policy enforcement layers around model endpoints. * Implement runtime detection and response capabilities for adversarial prompts and abusive behavior. * Secure training and fine-tuning pipelines, including data provenance, integrity, and access controls. * Design controls for sensitive data handling, retention, and redaction in LLM workflows. * Lead red-team exercises against AI systems and drive remediation of identified weaknesses. * Evaluate and harden third-party AI services and open-source AI components used internally. * Implement identity, authorization, and tenant-isolation patterns for multi-tenant AI services. * Drive supply chain security for ML artifacts including weights, datasets, and inference dependencies. * Collaborate with privacy, legal, and compliance teams to ensure AI systems meet regulatory obligations. * Develop monitoring, logging, and detection strategies tailored to AI workloads. * Lead incident response for AI-specific security events and drive durable improvements. * Stay current with adversarial ML, LLM security research, and emerging regulatory developments. ## Related Videos - [This App Reached 10,000 Users in One Week. 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