Senior Security Engineer, AI/ML, National Security, Public Sector

Google

Maryland

On-site

USD 174,000 - 252,000

Full time

31 hours ago
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Benefits offered by this job

Health insurance
Dental insurance
Vision insurance
Life insurance
Disability insurance
401(k) with company match
PTO 20 days

Job summary

Google Public Sector seeks a Security Engineer specializing in AI/ML to build and defend trusted AI deployments. You will secure on-prem GPU clusters and cloud environments, architect LLM deployments, and ensure a strong security posture across MLOps.

The role requires 5+ years in AI/ML or software, Docker/Kubernetes, Python with PyTorch/TensorFlow, a TS/SCI clearance with polygraph, and willingness to travel up to 25%. On-site work in Fort Meade, MD with possible Maryland remote options.

Qualifications

  • Bachelor’s degree in Computer Science, Data Science, AI or related field, or equivalent practical experience.
  • 5 years of AI/ML development, AI infrastructure engineering, or software development.
  • 5 years of experience with containerization (Docker) and orchestration (Kubernetes).
  • 5 years of Python programming and libraries like PyTorch, TensorFlow, or Hugging Face Transformers.
  • Ability to travel up to 25% of the time.
  • Active Top Secret/SCI security clearance with current polygraph.

Responsibilities

  • Architect and manage LLM deployments on-prem and cloud; audit multi-agent orchestration and data flows.
  • Use Docker and Kubernetes to orchestrate scalable inference and training environments.
  • Protect model weights and secure data ingestion across the MLOps lifecycle.
  • Investigate and mitigate AI threats; map findings to MITRE ATLAS, OWASP for LLMs, and STRIDE models.
  • Bridge local high-compute clusters with cloud AI services while maintaining security.

Skills

AI/ML development
Python programming
Security clearance (TS/SCI)
Willingness to travel

Education

Bachelor’s degree in Computer Science, Data Science, AI or related field

Tools

Docker
Kubernetes
PyTorch
TensorFlow
Hugging Face Transformers

Job description

Applicants must work 5 days per week on-site in Fort Meade, Maryland.

In accordance with Washington state law, we are highlighting our comprehensive benefits package, which is available to all eligible US based employees. Benefits for this role include:

  • Health, dental, vision, life, disability insurance
  • Retirement Benefits: 401(k) with company match
  • Paid Time Off: 20 days of vacation per year, accruing at a rate of 6.15 hours per pay period for the first five years of employment
  • Sick Time: 40 hours/year (increased to 69 hours/year for Seattle) including 5 discretionary sick days per instance
  • Maternity Leave (Short-Term Disability + Baby Bonding): 28-30 weeks
  • Baby Bonding Leave: 18 weeks
  • Holidays: 13 paid days per year

Note: By applying to this position you will have an opportunity to share your preferred working location from the following:

In-office locations: Washington D.C., DC, USA.
Remote location(s): Maryland, USA.
Minimum qualifications:
  • Bachelor’s degree in Computer Science, Data Science, Artificial Intelligence, or a related technical field or equivalent practical experience.
  • 5 years of experience in AI/ML development, AI infrastructure engineering, or software development.
  • 5 years of experience with containerization (Docker) and orchestration (Kubernetes).
  • 5 years of experience with Python and with libraries like PyTorch, TensorFlow, or Hugging Face Transformers.
  • Ability to travel up to 25% of the time as needed.
  • Must possess an active Top Secret/SCI security clearance with current polygraph.
Preferred qualifications:
  • 5 years of experience in AI/ML research or software development.
  • Experience with LLM deployment frameworks such as vLLM, NVIDIA Triton, or Ollama and agent development.
  • Knowledge of open worldwide application security project (OWASP) for LLMs or similar security frameworks.
  • Familiarity with cloud-native AI services (e.g., cloud computing platform, Google Vertex AI).
  • Track record of deploying AI models on air-gapped or on-premises high-performance computing (HPC) systems.
About The Job

Our Security team works to create and maintain the safest operating environment for Google's users and developers. Security Engineers work with network equipment and actively monitor our systems for attacks and intrusions.

In this role, you will also work with software engineers to proactively identify and fix security flaws and vulnerabilities.

In this role, you will help us build the most resilient AI infrastructure in the world. This role is designed for a technical expert in Artificial Intelligence and Machine Learning, with a primary interest in how those systems can be defended against adversarial manipulation. You will be responsible for the security configuration of AI deployments, from local on-prem GPU clusters to cloud-native environments. You will understand the nuances of LLMs, neural networks, and containerized ML pipelines, and will apply that knowledge to the frontier of security.

You will have an understanding of how Large Language Models (LLMs) work under the hood and to develop the next generation of automated defenses and adversarial testing frameworks.

Google Public Sector brings the magic of Google to the mission of government and education with solutions purpose-built for enterprises.

We focus on helping United States public sector institutions accelerate their digital transformations, and we continue to make significant investments and grow our team to meet the complex needs of local, state and federal government and educational institutions.

Individual pay is determined by factors including job-related skills, experience, and relevant education or training.

US: $174000 - $252000 (USD) + 15% bonus target + equity + benefits

Responsibilities

Learn more about benefits at Google .

  • Architect and manage LLM deployments across on-premises (NVIDIA/AMD) and cloud (cloud computing platform, Google Cloud platform (GCP) environments. Audit multi-agent orchestration, agent construction, and vector databases to map data flows and enforce privilege boundaries.
  • Use Docker and Kubernetes to orchestrate scalable inference and training environments, optimizing Graphics Processing Unit (GPU) utilization and resource isolation.
  • Protect model weights, secure data ingestion, and harden inference endpoints across the Machine Learning operations (MLOps) lifecycle.
  • Investigate and mitigate AI-specific threats (e.g., prompt injection, jailbreaking, data poisoning). Map testing findings to MITRE ATLAS, OWASP for LLMs, and STRIDE models.
  • Bridge local high-compute clusters and cloud AI services while maintaining a consistent security posture.

Google is proud to be an equal opportunity workplace and is an affirmative action employer. We are committed to equal employment opportunity regardless of race, color, ancestry, religion, sex, national origin, sexual orientation, age, citizenship, marital status, disability, gender identity or Veteran status. We also consider qualified applicants regardless of criminal histories, consistent with legal requirements. See also Google's EEO Policy and EEO is the Law. If you have a disability or special need that requires accommodation, please let us know by completing our Accommodations for Applicants form .

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