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AI Security Engineer

Role overview

Qualifications

  • 5–8+ years in application/cloud security with 2+ years in AI/ML or LLM security
  • Proficiency in Python or TypeScript/Node.js
  • Experience with AI red teaming and building evaluation harnesses
  • Relevant degree in Computer Science, Engineering, Cybersecurity, or equivalent experience

Responsibilities

  • Design reference architectures for secure LLM/AI agent deployments across Azure, AWS, or hybrid environments
  • Implement runtime guardrails including prompt injection defenses, output content filtering, PII detection/redaction, jailbreak prevention
  • Integrate Entra ID / Azure AD, OAuth/OIDC, and RBAC/ABAC models
  • Establish observability for AI systems including privacy-aware logging, policy hits, model drift detection

About the company

Dynanet Corporation logo

Dynanet Corporation

IT Services & IT Consulting

Whether it is our customers and their specific solution needs or our own staff working to meet new challenges, Dynanet is driven by people, relationships and the power of connection. Dynanet has been helping federal agencies keep pace with these changes, while adhering to mandates from Executive Orders and Office of Management and Budget (OMB) memorandums and aligning with guidance from the U.S. Digital Services Playbook. It is a challenging time for the federal government to meet their missions in support of the American people and Dynanet is ready to help meet those challenges to bring IT services into the next decade.

Company details

Company typeSME
IndustryIT Services & IT Consulting
Company size51 - 200

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Job description

Job Type
Full-time
Description

Position Details: 

Job Title: AI Security Engineer 

Job Type: Full-time 

Location: Remote, MD 

Dynanet Corporation Overview: 

Dynanet started with a focus on IT infrastructure and operations, helping organizations enhance their networks and overcome the limitations of 1990s technology. From strengthening communication channels to introducing innovative ways to collaborate and share information, Dynanet played a crucial role in shaping the early stages of digital transformation. The company’s efforts helped organizations build the very fabric of connectivity that now powers our modern world. Over the last three decades, Dynanet has grown into a trusted partner for organizations looking to innovate boldly and transform seamlessly. While technology continues to evolve and unlock new opportunities, for nearly 30 years, Dynanet remains committed to delivering cutting-edge solutions that drive lasting change for its customers. Through agility, foresight, and an unwavering dedication to excellence, Dynanet continues to empower organizations to thrive in a rapidly changing digital landscape. Our story is more than just a story of technology – it’s a story of vision, growth, and transformation that has shaped the past and continues to pave the way for the future. 

Requirements

Roles & Responsibilities: 

Security Architecture for AI Workloads 

  • Design reference architectures for secure LLM/AI agent deployments across Azure, AWS, or hybrid environments. 
  • Establish defense-in-depth controls for model endpoints, vector databases, prompt routing, tools/plugins, and orchestration layers. 

Guardrails & Policy Enforcement 

  • Implement runtime guardrails including prompt injection defenses, output content filtering, PII detection/redaction, jailbreak prevention, and tool use restrictions. 
  • Codify enterprise policies (acceptable use, data residency, retention, secrets handling) into enforceable controls through middleware, gateways, and policy engines. 

Identity, Access & Data Protection 

  • Integrate Entra ID / Azure AD, OAuth/OIDC, and RBAC/ABAC models. 
  • Apply data security measures including DLP, encryption, key management/HSM, tokenization, and fine-grained data access for RAG pipelines. 

Secure SDLC for AI 

  • Embed threat modeling, secure coding, dependency scanning, secret scanning, and SAST/DAST into AI app pipelines. 
  • Define AI-specific code review checklists for prompt templates, tool bindings, and agent plans. 

Risk, Governance & Compliance 

  • Operationalize NIST AI RMF, ISO/IEC 27001 & 42001, SOC 2; align with FedRAMP, FISMA, NIST 800-53, and agency-specific controls. 
  • Maintain model cards, data lineage, evaluation reports, and audit trails for AI decisions and tool calls. 

AI Red Teaming & Evaluation 

  • Design adversarial tests for jailbreaks, prompt injections, data exfiltration attempts, and toxic outputs. 
  • Build automated evaluation harnesses and metrics such as hallucination rates, sensitive content occurrence, and tool misuse rates. 

Monitoring & Incident Response 

  • Establish observability for AI systems including privacy-aware logging, policy hits, model drift detection, cost governance, and anomalies. 
  • Define playbooks for AI incidents involving unsafe outputs, data leakage, compromised tools, or model endpoint abuse. 

Stakeholder Enablement 

  • Partner with Product and Engineering teams to safely accelerate new AI use cases. 
  • Provide training and guidance on responsible AI, secure agent design, and safe prompt engineering. 

Required Professional Skills: 

Cloud & AI Platforms 

  • Azure (Azure OpenAI, AI Studio, AKS, Key Vault, Entra ID, Defender), Microsoft Purview, and M365 Copilot governance. 
  • Experience with AWS (Bedrock, SageMaker, KMS) or GCP Vertex AI. 

LLM/Agent Security 

  • Hands-on guardrail implementation including content filters, safety classifiers, prompt injection defenses, jailbreak prevention, and tool whitelisting. 
  • Securing RAG pipelines and vector databases (Cosmos DB + pgvector/FAISS, Pinecone, Weaviate). 

Identity & Access 

  • OAuth/OIDC, SAML, SCIM, RBAC/ABAC; secrets management via Key Vault, Parameter Store, or Vault. 

Data Security 

  • Encryption, tokenization, redaction, differential privacy basics, DLP-based PII/PHI detection. 
  • Experience with data classification, retention, and lineage. 

Application Security & DevSecOps 

  • STRIDE threat modeling, secure coding, dependency scanning, secret scanning, SAST/DAST. 
  • CI/CD for AI apps (GitHub Actions/Azure DevOps), IaC (Bicep/Terraform), policy-as-code (OPA/Conftest/Azure Policy). 

Observability & Incident Response 

  • Logging with Azure Monitor/Sentinel, tracing, metrics, and automated AI evaluation pipelines integrated with SIEM/SOAR. 

Compliance & Governance 

  • Working knowledge of NIST AI RMF, ISO/IEC 42001, OWASP LLM Top 10, and public sector controls. 
  • Experience documenting controls, audits, and risk assessments. 

Programming & Frameworks 

  • Proficiency in Python or TypeScript/Node.js. 
  • Experience with agent/orchestration frameworks (LangChain, Semantic Kernel, Guidance, DSPy). 

Preferred Professional Skills: 

  • 5–8+ years in application/cloud security with 2+ years in AI/ML or LLM security. 
  • Experience enabling enterprise AI use cases or AI agents in regulated environments. 
  • Familiarity with Microsoft Copilot for M365 governance and Microsoft Purview. 
  • Experience with AI red teaming and building evaluation harnesses. 
  • Exposure to privacy regulations (HIPAA, GLBA, GDPR/CCPA) and public-sector compliance. 
  • Contributions to security frameworks or open-source guardrail tools 

Dynanet Team Requirements and Expectations: 

  • Possess Strong written and verbal communication skills. 
  • Highly organized with the ability to prioritize, balance, and effectively advance multiple competing priorities in a high-volume, fast-paced environment. 
  • Ability to interact in a professional and collaborative manner with fellow Dynanet Teammates and the clients, and business partners that we work with. 
  • Ability and desire to challenge and educate yourself to support and advance IT services delivery in the Federal agencies we serve. 
  • Excellent judgment and creative problem-solving skills. 
  • Respond to team member and client requests via email, MS teams, or other communication means during core business hours. 
  • Active listening skills to understand clients' needs, and collaboration skills to work with other developers and designers. 

Education/Experience Requirements: 

  • Relevant degree in Computer Science, Engineering, Cybersecurity, or equivalent experience. 

Nice to Have Certs 

  • CISSP, CCSP, Azure Security Engineer (AZ-500), GIAC (GWEB/GWAPT/GXPN), OSCP. 
  • Azure AI Engineer (AI-102), Azure Solutions Architect (AZ-305), AWS Security Specialty. 
  • CISA, ISO 27001 Lead Implementer, Responsible AI certifications 

Employee Benefits Overview: 

  • Industry Competitive Compensation 
  • Medical and Dental Insurance 
  • Paid Time Off/Holidays 
  • 401(k) Retirement Plans with Matching 
  • Remote Work* 
  • Paid Training 
  • Employee Referral Program 
  • Employee Development Program

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MR

Marcus Rivera

Chief Revenue Officer

m.rivera@company.com
linkedin.com/in/marcusrivera
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