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Artificial Intelligence H1B Jobs (NOW HIRING)

Java AI Engineer-C2C

Austin, TX · On-site

$51.25 - $70.50/hr

Java AI Engineer-NO OPT and H1B Location: Austin, TX/ Sunnyvale, CA (Sunnyvale - 2 Positions ... Artificial Intelligence: 2-5 years Machine Learning: 2-5 years of experience in building or ...

HSHS Medical Group can also sponsor an H1B at this location. Why Join HSHS O'Fallon Endocrinology ... Notice Regarding Potential Use of Artificial Intelligence in the Hiring Process Hospital Sisters ...

Entry Level Data Scientiest

Manchester, NH · On-site

$16.50 - $22.25/hr

... Artificial Intelligence models Good knowledge on Exploratory Data Analysis (EDA) Hands on ... Benefits: On Job Technical support E- verified Filing of H1b and Green card Full time position ...

... artificial intelligence and use it to empower organisations and businesses. We are a globally ... We provide visa assistance, including H1B and OPT transfers, for US employees to ensure a smooth ...

HSHS Medical Group can also sponsor an H1B at this location. Why Join HSHS O'Fallon Endocrinology ... Notice Regarding Potential Use of Artificial Intelligence in the Hiring Process Hospital Sisters ...

Entry Level Data Scientiest

Los Angeles, CA · On-site

$18 - $24/hr

Hands on experience in building Machine Learning and Artificial Intelligence models * Good ... Filing of H1b and Green card * Full time position Candidate who are missing the required skills ...

Physician - General Cardiologist

O Fallon, IL · On-site

$261K - $326K/yr

H1B supported: J1 ineligible Position Details: * Monday - Friday weekly schedule * Rotating call ... Notice Regarding Potential Use of Artificial Intelligence in the Hiring Process Hospital Sisters ...

HSHS Medical Group can also sponsor a J1 and H1B at this location. Why Join HSHS O'Fallon ... Notice Regarding Potential Use of Artificial Intelligence in the Hiring Process Hospital Sisters ...

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Artificial Intelligence H1B information

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How much do artificial intelligence h1b jobs pay per hour?

As of Aug 20, 2026, the average hourly pay for artificial intelligence h1b in the United States is $60.06, according to ZipRecruiter salary data. Most workers in this role earn between $52.88 and $64.66 per hour, depending on experience, location, and employer.

What is an artificial intelligence H1B job?

An Artificial Intelligence H1B job refers to a role in AI-related fields that U.S. employers sponsor for foreign workers under the H1B visa program. These roles typically involve expertise in machine learning, deep learning, natural language processing, or computer vision. Employers must demonstrate that the position requires specialized knowledge and that the candidate meets the necessary qualifications. The demand for AI professionals has increased significantly, making AI-related roles a common category for H1B sponsorship.

What are the typical daily responsibilities of an artificial intelligence professional working on an H1B visa?

As an Artificial Intelligence professional on an H1B visa, your daily tasks often include developing, testing, and refining AI models, collaborating with data scientists and software engineers, and participating in team meetings to discuss project goals and evaluate progress. You may also spend time analyzing large datasets, writing clean and efficient code, and preparing technical documentation for ongoing projects. In many organizations, you will work within diverse, cross-functional teams, which can provide valuable opportunities to learn and grow with experienced professionals from around the world. This structure helps ensure you’re consistently engaged with innovative projects and positioned for career advancement.

What are the key skills and qualifications needed to thrive in the artificial intelligence H1B position, and why are they important?

To thrive as an Artificial Intelligence professional on an H1B visa, you typically need a strong background in computer science, data structures, algorithms, and advanced degrees in AI or related fields. Familiarity with machine learning frameworks like TensorFlow or PyTorch, programming languages such as Python, and recognized certifications such as AWS Certified Machine Learning are valuable assets. Problem-solving ability, cross-cultural communication, and teamwork make someone stand out in this position. These skills and qualities are essential to successfully develop, implement, and collaborate on advanced AI solutions in a dynamic, globally integrated workplace.

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What job categories do people searching Artificial Intelligence H1B jobs look for?

The top searched job categories for Artificial Intelligence H1B jobs are:

Infographic showing various Artificial Intelligence H1B job openings in the United States as of August 2026, with employment types broken down into 90% Full Time, 7% Part Time, and 3% Contract. Highlights an 83% Physical, 5% Hybrid, and 12% Remote job distribution, with an average salary of $124,929 per year, or $60.1 per hour.

Artificial Intelligence / Machine Learning Consultant for Texas DIR, Austin, Tx

Pedigo Staffing Services

Austin, TX • On-site

$120 - $180/hr

Other

Re-posted 3 days ago


Job description

Artificial Intelligence / Machine Learning Consultant for Texas DIR, Austin, Tx
  • Austin, TX

Title: Artificial Intelligence / Machine Learning Consultant

Agency: Texas Department of Information Resources

Location: North Austin, Texas 78758

Solicitation: RFR041FY26

Duration: On-going, possibly four years

Contract Type: W2 with benefits

Visa requirements: US Citizen, Greencard Holder, EAD. No H1B

Telework Policy: Client site and telework hybrid

Required/Preferred Skill Sets:

  • 8 years, Required - Hands-on software engineering experience.
  • 8 years, Required - Expertise in modern cloud platforms.
  • 8 years, Required - trong proficiency in: TypeScript/JavaScript, Python, or C#; Modern UI frameworks (React, Angular, Web Components).
  • 8 years, Required - Experience with integrating APIs (LLMs, internal services, data platforms).
  • 8 years, Required - Experience with CI/CD platforms using GitHub Actions, Azure DevOps, or equivalent including building and deploying applications.
  • 8 years, Required - Experience with infrastructure as code and automating environments (e.g., Terraform, ARM/Bicep, or similar tools. Experience working directly with customers or frontline operational teams to build and improve solutions.
  • 8 years, Required - Extend tools like Salesforce, Appian, ServiceNow, etc. Demonstrated success delivering systems end to end from design to deploy.
  • 8 years, Required - Understanding of security frameworks (NIST, Zero Trust, TX-RAMP expectations).
  • 8 years, Required - Excellent communication and cross-functional collaboration skills.
  • 8 years, Required - Ability to decide when NOT to use low-code.
  • 8 years, Required - Ability to identify high-value use cases and ability to observe workflows.
  • 8 years, Required - Bachelor’s degree in Computer Science, Engineering, or related field OR Equivalent experience (10+ years) in hands-on modern engineering roles.
  • 8 years, Preferred - Experience in state government, regulated environments, or multi-agency integration projects.
  • 8 years, Preferred - Prior FDE or technical field engineering experience at a software platform company.
  • 8 years, Preferred - Experience designing, evaluating, or implementing AI-enabled workflows using commercial, open-source, or government-approved LLM platforms, including patterns such as retrieval-augmented generation, agentic workflows, model evaluation...cont. next line...
  • 8 years, Preferred - prompt management, human-in-the-loop review, and responsible AI controls. Experience with shared technical services or modernization programs (e.g., TSS/MSI) .
  • 8 years, Preferred - Experience producing reusable components, design systems, developer tooling.
  • 8 years, Preferred - Ability to compare AI/LLM options using objective criteria such as data sensitivity, hosting model, latency, cost, accuracy, explainability, auditability, security controls, integration complexity, and operational sustainability.
  • 8 years, Preferred - CISSP, CCSP, or CISM
  • 8 years, Preferred - Kubernetes certifications (CKA/CKAD)
  • 8 years, Preferred - TOGAF or architecture certifications
  • 8 years, Preferred - Scrum Master or SAFe Agile certs
  • 6 years, Preferred - TX-RAMP knowledge or auditor training
  • 1 years, Preferred - Cloud architecture, DevOps, AI, security, or Kubernetes certifications from one or more major providers, such as Azure, AWS, Google Cloud, Kubernetes, HashiCorp, ISC2, ISACA, or equivalent.

The Forward Deployed Engineer (FDE) works directly with DIR and partner agencies to rapidly design, build, deploy, and iterate modern digital solutions—often working onsite or embedded with mission teams.

  • FDE bridges gaps between product teams, security, business units, and cloud engineering
  • FDE should apply platform-agnostic engineering practices and evaluate AI/LLM capabilities based on business need, security requirements, data classification, interoperability, sustainability, and total cost of ownership rather than defaulting to a single cloud, model, or vendor ecosystem.
  • Provides FDE methodology and best practices to DIR staff for knowledge transfer sessions and skill growth. Supports IT and other AI initiative at DIR.

This role is intended to bring advanced, forward-looking technical capability to DIR and partner agencies while remaining flexible, platform-agnostic, and outcomes-focused.

  • The consultant should be able to work at the intersection of modern software engineering, cloud-native architecture, AI-enabled development, automation, security, and agency mission delivery.
  • Rather than prescribing a specific cloud platform, LLM provider, or toolchain, the role should emphasize the ability to evaluate technologies based on business need, security posture, data sensitivity, interoperability, cost, operational maturity, and long-term sustainability.
  • The ideal candidate should help DIR and agencies understand what is possible with modern technology, translate emerging capabilities into practical delivery patterns, and coach internal teams on how to adopt those capabilities responsibly.
  • This includes helping teams turn ambiguous problems into practical, AI-enabled workflows, while exploring AI, automation, APIs, integration patterns, DevSecOps, and reusable components.
  • Focus on rapid prototyping and delivering value without assuming any single vendor or solution is always the right fit.
  • The goal is to raise technical fluency, accelerate modernization, and build internal capability while preserving architectural flexibility.
  • The role should be aspirational in terms of skill level and innovation, but not overly prescriptive in terms of specific products, platforms, or implementation methods.

Deliverables

  • Production-ready code, pipelines, infrastructure templates, and documentation.
  • Architecture diagrams, operational runbooks, and security compliance mappings.
  • AI-assisted development workflows and accelerators.
  • Knowledge transfer sessions and training for agency development staff.

Key Responsibilities

  • Deliver high-quality application, Application Programming Interface (API), Model Context Protocol (MCP), and automation components using cloud-native architectures.
  • Develop rapid prototypes, pilots, and production systems using modern engineering patterns.
  • Integrate systems across agencies using secure, scalable, human-in-the-loop workflows.
  • Implement DevSecOps automation (CI/CD, IaC, container orchestration, cloud pipelines).
  • Collaborate directly with agency stakeholders to gather requirements and convert them into working software.
  • Deploy AI-enabled development workflows and LLM-assisted capabilities.
  • Troubleshoot complex production issues and lead root-cause analysis.
  • Mentor agency developers, maturing internal capability and reducing vendor reliance.
  • Provide documentation, architectural guidance, and knowledge transfer.
  • Rapidly build AI-powered tools using existing systems, and create new applications where needed, to move from experimentation to real impact.
  • Comfort working across cloud environments and internal enterprise systems.
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