Senior Cloud Security Automation & AI Engineer- Remote (Anywhere in the U.S.)
GuidePoint Security · Remote
📍 Remotevia greenhousePosted 2026-09-22
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GuidePoint Security provides trusted cybersecurity expertise, solutions and services that help organizations make better decisions and minimize risk. By taking a three-tiered, holistic approach for evaluating security posture and ecosystems, GuidePoint enables some of the nation’s top organizations, such as Fortune 500 companies and U.S. government agencies, to identify threats, optimize resources and integrate best-fit solutions that mitigate risk.
General Description
We are looking for a skilled Senior Cloud Security Automation & AI Engineer to support the Cloud Security Automation and AI Practice. This role combines hands-on delivery, technical oversight, presales support, and practice development to help organizations adopt and secure AI/ML platforms across multi-cloud environments.
The Senior Cloud Security Automation & AI Engineer will be required to demonstrate strong technical depth across cloud-native AI services, agentic AI design patterns, and AI governance frameworks. This individual will compose and secure agentic AI solutions, implement AI gateways and policy-based controls, and translate complex security and automation requirements into actionable, outcome-driven solutions. They will lead by influence and bring business acumen to drive the adoption of progressive cloud security automation programs aligned with client objectives and practice priorities.
About the Cloud Security Automation and AI Practice
The Cloud Security Automation and AI Practice is responsible for helping organizations securely adopt, deploy, and govern AI/ML workloads and automation pipelines across cloud environments. We deliver advisory, implementation, and managed services that bridge the gap between innovation and security.
Our team of engineers, architects, and consultants focuses on cloud-native AI platforms, security automation frameworks, and enterprise AI governance. We partner with clients, account executives, and technology vendors to deliver solutions that reduce risk while accelerating AI adoption.
Deliver secure AI/ML platform implementations across AWS, Azure, Google Cloud, and third-party enterprise AI platforms
Develop reusable automation frameworks, accelerators, and reference architectures for AI security
Drive thought leadership and practice growth through presales support, content development, and industry engagement
Roles and Responsibilities
Delivery & Technical Execution
Lead end-to-end delivery of cloud security automation and AI engagements, including scoping, architecture design, implementation, and client handoff
Design and implement secure agentic AI solutions, including multi-agent orchestration, Model Context Protocol (MCP) integrations, AI gateway architectures, and policy-based access controls using frameworks such as Cedar
Architect and enforce AI governance policies, including usage policies, data handling controls, model access management, and compliance guardrails for enterprise AI deployments
Develop and deploy AI-powered security automation solutions (e.g., automated compliance checks, threat detection agents, remediation workflows) for clients
Produce high-quality deliverables including architecture documents, runbooks, SOPs, and security assessment reports
Technical Oversight & Quality Assurance
Provide technical oversight and quality assurance across active engagements, ensuring deliverables meet GuidePoint standards and client expectations
Mentor and guide junior engineers on best practices for cloud security, AI/ML implementation, and secure development
Conduct architecture reviews, code reviews, and security assessments for AI/ML workloads
Presales & Business Development Support
Support presales activities by participating in client discovery calls, demos, and technical deep dives
Contribute to proposals, statements of work (SOWs), and pricing estimates for AI security and automation engagements
Collaborate with account executives and practice leadership to identify opportunities and shape client solutions
Practice Development & Thought Leadership
Contribute to practice development by building reusable tools, templates, accelerators, and reference architectures
Develop thought leadership content such as blog posts, whitepapers, webinars, and conference presentations
Stay current on emerging AI/ML platforms, cloud security trends, and regulatory developments to inform practice strategy
Required Experience and Education
Bachelor's Degree (BS/BA) + 5-7 years of experience
Demonstrated experience designing, implementing, or securing AI/ML workloads in cloud environments
Hands-on proficiency with primary AI/ML platforms: Amazon Bedrock, Amazon Q, and Amazon SageMaker
Preferred experience with secondary platforms: Azure AI Foundry, Microsoft 365 Copilot, Copilot Studio, Azure Machine Learning
Experience in a client-facing consulting or professional services role
Embraces emerging technologies, including AI tools, to work smarter, solve problems, and drive better business outcomes
Basic Python competency, including the ability to read, write, and troubleshoot code for automation and integration tasks
Understanding of agentic AI patterns, AI governance frameworks, and secure AI composition (e.g., multi-agent orchestration, tool-use guardrails, prompt injection mitigation)
Technology Proficiency
Primary (AWS)
Amazon Bedrock
Amazon Q (Business, Developer)
Amazon SageMaker
Secondary (Azure)
Azure AI Foundry
Microsoft 365 Copilot
Copilot Studio
Azure Machine Learning
Additional Platforms
Gemini for Google Workspace
Claude for Enterprise (Anthropic)
ChatGPT Enterprise / OpenAI Platform
AI Security & Governance
AI Gateways (centralized proxy, traffic control, policy enforcement)
Model Context Protocol (MCP)
Cedar (AWS policy language for fine-grained authorization)
AI governance and usage policy frameworks (NIST AI RMF, ISO 42001, OWASP LLM Top 10)
Pre
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