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Machine Learning Government Jobs in Maryland (NOW HIRING)

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Machine Learning Government information

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How much do machine learning government jobs pay per hour?

As of Aug 10, 2026, the average hourly pay for machine learning government in Maryland is $22.15, according to ZipRecruiter salary data. Most workers in this role earn between $19.13 and $24.71 per hour, depending on experience, location, and employer.

What are the key skills and qualifications needed to thrive in the machine learning government position, and why are they important?

To excel in a Machine Learning Government role, candidates typically need expertise in data analysis, machine learning algorithms, and programming languages such as Python or R, often backed by a degree in computer science, data science, or a related field. Familiarity with government data systems, cloud platforms, and security protocols, as well as certifications like Certified Data Professional (CDP), can be valuable. Strong problem-solving skills, attention to detail, and the ability to communicate technical concepts to non-experts are highly desirable soft skills. These competencies enable professionals to effectively integrate machine learning solutions while adhering to regulatory requirements and serving public sector objectives.

What types of government projects do machine learning professionals typically work on?

Machine learning professionals in the government sector often work on projects related to public service optimization, fraud detection, public safety analytics, and predictive modeling for policy development. These roles may involve collaborating with cross-functional teams, including data analysts, policymakers, and IT specialists, to turn large datasets into actionable insights. Daily tasks might include cleaning and analyzing data, building predictive models, and presenting results to stakeholders with varying technical backgrounds. The work environment is usually mission-driven, with an emphasis on transparency, compliance, and impact. Over time, professionals in this field can advance into leadership or specialized research roles, contributing to innovative solutions that benefit the public.

What is a machine learning government?

A Machine Learning Government job involves applying artificial intelligence and data science techniques to solve problems in public sector domains like healthcare, cybersecurity, law enforcement, and policy analysis. Professionals in this field work with large datasets, develop predictive models, and enhance decision-making processes for government agencies. They may also focus on ethical AI deployment, regulatory compliance, and ensuring transparency in machine learning applications. These roles often require expertise in programming, statistics, and domain-specific knowledge related to government operations.

What are popular job titles related to Machine Learning Government jobs in Maryland? For Machine Learning Government jobs in Maryland, the most frequently searched job titles are:
What job categories do people searching Machine Learning Government jobs in Maryland look for? The top searched job categories for Machine Learning Government jobs in Maryland are:
Infographic showing various Machine Learning Government job openings in Maryland as of August 2026, with employment types broken down into 50% Full Time, and 50% Part Time. Highlights an 50% In-person, and 50% Remote job distribution, with an average salary of $46,070 per year, or $22.1 per hour.

Machine Learning Operations (MLOps) Engineer

Umd

College Park, MD

$150K/yr

Full-time

Re-posted 29 days ago


Job description

Job Description SummaryOrganization's Summary Statement:
The Applied Research Laboratory for Intelligence & Security (ARLIS) at the University of Maryland is a University-Affiliated Research Center (UARC) dedicated to advancing research, innovation, and technology transition to improve decision making for U.S. national security. ARLIS combines deep scientific expertise with operational insight to address challenges in intelligence analysis, cybersecurity, artificial intelligence / machine learning, quantum science, and human-machine teaming. Researchers, scientists, engineers, and analysts at ARLIS collaborate with government agencies, industry partners, and academic institutions to deliver actionable insights and transformative solutions through research and development. Employees at ARLIS work on projects of critical importance, contribute directly to the nation's security, and are supported by a culture that values integrity, collaboration, and professional growth.
ARLIS is seeking a mid-level MLOps Engineer to support the deployment, scaling, and operationalization of machine learning systems for national security applications. This role focuses on bridging research and production by enabling robust, secure, and reproducible ML pipelines in mission-critical environments. The successful candidate will work closely with AI researchers, software engineers, and domain experts to transition advanced algorithms into operational capabilities.
Key Responsibilities:
-Design, build, and maintain scalable ML pipelines for training, evaluation, and deployment.
-Operationalize machine learning models in secure, production-grade environments (on-prem, cloud, hybrid).
-Implement CI/CD workflows for ML systems, including automated testing, validation, and monitoring.
-Manage data pipelines, feature stores, and model versioning to ensure reproducibility and auditability.
-Monitor model performance, drift, and system health; implement feedback loops and retraining strategies.
-Collaborate with researchers to translate experimental models into production-ready systems.
-Integrate security best practices into ML workflows (DevSecOps for AI systems).
-Support deployment of ML systems in constrained or classified environments.
-Contribute to infrastructure design supporting AI/ML workloads (GPU clusters, distributed systems).
Must be able to obtain a U.S. security clearance. If selected, you must meet the requirements for access to classified information and will be subject to a government security clearance investigation that includes criminal and credit history checks, as well as verification of U.S. citizenship, birth, education, employment, and military history.
Final offer is contingent upon the candidate's ability to successfully obtain the necessary interim Secret security clearance, as determined by the U.S. Government, prior to commencing employment.
Physical Demands:
Sedentary work performed in a normal office environment; exerts up to 10 pounds of force occasionally and/or negligible amount of force frequently or constantly to lift, carry, push, pull or otherwise move objects, including the human body. Ability to attend meetings both on and off campus. Spending long hours in front of a computer screen.
Minimum Qualifications:
-Bachelor's degree in Computer Science, Engineering, Data Science, or related field.
-3-6 years of experience in software engineering, data engineering, or MLOps.
-Experience with ML frameworks (e.g., PyTorch, TensorFlow) and pipeline tools (e.g., Airflow, Kubeflow).
-Proficiency in Python and experience with containerization (Docker) and orchestration (Kubernetes).
-Experience with cloud platforms (AWS, Azure, or GCP) and ML services.
-Understanding of software engineering best practices (CI/CD, testing, version control).
Preferences:
-Experience deploying ML systems in regulated or security-sensitive environments.
-Familiarity with data governance, model auditing, and explainability techniques.
-Experience with distributed training, GPU acceleration, and large-scale data systems.
-Knowledge of infrastructure-as-code (Terraform, CloudFormation).
-Experience supporting national security, defense, or intelligence-related programs.
-Active U.S. security clearance.
Work Environment & Impact:
-Work on cutting-edge AI/ML systems addressing real-world national security challenges.
-Collaborate with leading experts across disciplines in a highly innovative R&D environment.
-Help transition advanced research into operational capabilities with tangible mission impact.
Licenses/ Certifications: N/AAdditional Job Details

Required Application Materials: Cover Letter, Resume, List of References

Best Consideration Date: 6/26/26

Posting Close Date: N/A

Open Until Filled: Yes

Financial Disclosure RequiredNo

For more information on Financial Disclosure, please visit Maryland's State Ethics Commission website.

DepartmentVPR-Applied Research Lab for Intelligence & SecurityWorker Sub-Type Faculty RegularSalary Range$150,000 - $225.000
Benefits Summary

For more information on Regular Faculty benefits, select this link.

Background Checks

Offers of employment are contingent on completion of a background check. Information reported by the background check will not automatically disqualify anyone from employment. Before any adverse decision, the finalist will have an opportunity to provide information to the University regardingdisclosablebackground checkinformation. The University reserves the right to rescind the offer of employment or otherwise decline or terminate employment if the information reported by the background check is deemed incompatible with the position, regardless of when the background check is completed.

Employment Eligibility

The successful candidate must complete employment eligibility verification (on Form I-9) by presenting documents that establish identity and work authorization within the timeframe required by federal immigration law, and where applicable, to demonstrate renewed employment authorization. Failure to complete employment eligibility verification or reverification within the timeframe set forth by law may result in suspension or termination of employment.

EEO Statement

The University of Maryland, College Park is an Equal Opportunity Employer. All qualified applicants will receive equal consideration for employment. Please read the University's Equal Employment Opportunity Statement of Policy.

Title IX Non-Discrimination NoticeResources
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