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Internship Healthcare Artificial Intelligence Jobs

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How much do internship healthcare artificial intelligence jobs pay per hour?

As of Aug 30, 2026, the average hourly pay for internship healthcare artificial intelligence in the United States is $19.31, according to ZipRecruiter salary data. Most workers in this role earn between $16.11 and $20.91 per hour, depending on experience, location, and employer.

What is an internship in healthcare artificial intelligence?

An internship in Healthcare Artificial Intelligence (AI) is a temporary position that allows students or recent graduates to gain practical experience working with AI technologies in healthcare settings. Interns may assist with tasks such as data analysis, developing machine learning models, or supporting research on medical imaging, diagnostics, and healthcare automation. These internships provide valuable hands-on learning opportunities, exposure to real-world healthcare challenges, and a chance to work alongside professionals in both healthcare and technology fields. They are ideal for individuals interested in the intersection of medicine, data science, and computer programming.

What types of projects and responsibilities can I expect during a healthcare artificial intelligence internship?

As a Healthcare Artificial Intelligence intern, you can expect to work on projects that involve analyzing medical data, developing or testing machine learning models, and assisting with the implementation of AI solutions in healthcare settings. Responsibilities may include data preprocessing, model evaluation, and collaborating with data scientists, clinicians, or engineers to improve healthcare outcomes. Interns often contribute to research, help interpret AI results, and may present findings to the team, providing valuable hands-on experience in both technical and healthcare-specific domains.

What are the key skills and qualifications needed to thrive in a healthcare artificial intelligence internship?

To thrive as an intern in Healthcare Artificial Intelligence, you generally need a strong foundation in computer science, data analysis, and a basic understanding of healthcare concepts, often supported by relevant coursework or a degree in a related field. Familiarity with programming languages like Python, machine learning frameworks (such as TensorFlow or PyTorch), and data management systems is typically required. Analytical thinking, problem-solving, teamwork, and effective communication are valuable soft skills for collaborating on interdisciplinary projects. These skills are crucial for contributing to innovative AI solutions that address real healthcare challenges and ensure effective integration within clinical environments.
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Infographic showing various Internship Healthcare Artificial Intelligence job openings in the United States as of August 2026, with employment types broken down into 3% As Needed, 64% Full Time, 15% Part Time, and 18% Contract. Highlights an 95% Physical, 1% Hybrid, and 4% Remote job distribution, with an average salary of $40,174 per year, or $19.3 per hour.

Senior Data Engineer - Healthcare AI

Houston, TX • Remote


MD Anderson
Health Care and Social Assistance • 10K+ employees

8.5

Company rating: 8.5 out of 10

Based on 172 frontline employees who took The Breakroom Quiz

14th of 895 rated healthcare providers

People enjoy working here

Good employer

Recommended by students


$123K/yr

Full-time

Medical, Dental, Vision, Life, Retirement, PTO

Posted 2 days ago

New


Job description

Within the Data Impact & Governance Department, the Senior Data Engineer for Healthcare Artificial Intelligence role supports the design and delivery of data infrastructure that powers advanced artificial intelligence and machine learning solutions in healthcare. This is more than engineering-it's an opportunity to shape the future of cancer care through responsible AI innovation.
Salary Range is Min-$123,000, Mid-$154,000, Max-$185,000, 100% remote within Texas.
The Data Impact & Governance Department focuses on building scalable, secure, and trusted data platforms that enable innovation while maintaining compliance and governance standards. The Senior Data Engineer for Healthcare Artificial Intelligence will architect and optimize critical data systems, the Senior Data Engineer for Healthcare Artificial Intelligence will enable responsible AI adoption, and the Senior Data Engineer for Healthcare Artificial Intelligence will help advance data-driven improvements in cancer care across UT MD Anderson.
The ideal candidate brings advanced technical expertise in data engineering, healthcare data management, and AI/ML enablement. Preferred qualifications include experience with Python, SQL, Spark, Azure services, Infrastructure-as-Code technologies, CI/CD workflows, healthcare data standards such as HL7, FHIR, and DICOM, HIPAA/HITRUST compliance practices, feature and vector store management, leadership experience, and the ability to communicate effectively with both technical and non-technical stakeholders.
Why Us?
At UT MD Anderson, this role provides the opportunity to build the data foundations that support transformative artificial intelligence and machine learning initiatives in healthcare. The position contributes directly to improving patient outcomes through responsible innovation while offering meaningful professional growth, collaboration with multidisciplinary experts, and resources that support long-term career development and work-life balance.
• Employer-paid medical coverage starting day one for employees working 30+ hours/week, plus optional group dental, vision, life, AD&D, and disability insurance.
• Accruals for PTO and Extended Illness Bank, plus paid holidays, wellness, childcare, and other leave options.
• Tuition Assistance Program after six months of service and access to extensive wellness, fitness, and employee resource groups.
• Defined-benefit pension through the Teachers Retirement System, voluntary retirement plans, and employer-paid life and reduced salary protection programs.
Responsibilities
Build and Scale AI/ML Data Pipelines
• Design, implement, and maintain batch and streaming pipelines for machine learning training, deployment, inference, and monitoring
• Utilize Azure, Dataiku, and open-source tools to deliver scalable and reliable AI/ML data solutions
Data, Feature, and Vector Store Engineering • Deploy and manage raw data stores for production AI/ML workloads
• Develop and maintain feature stores to support machine learning lifecycle requirements
• Manage vector stores to provide fast and reliable access for production AI systems
Automate Infrastructure and Ensure Data Trust
• Automate deployments using Infrastructure-as-Code methodologies
• Implement CI/CD workflows to improve operational efficiency and deployment reliability
• Establish data validation processes to improve accuracy and consistency
• Implement lineage, anomaly detection, and drift monitoring capabilities for compliant and trusted data operations
Security, Compliance, and Operations
• Enforce encryption controls across data platforms and pipelines
• Implement role-based access controls, tokenization, and audit logging
• Support HIPAA and HITRUST compliance requirements while enabling scalable AI operations
• Manage monitoring, alerting, incident response, and continuous improvement activities
• Own data pipelines and infrastructure throughout the operational lifecycle
Collaboration and Leadership
• Partner with data engineers, machine learning engineers, data scientists, clinicians, and technology stakeholders to deliver scalable AI solutions
• Mentor team members and promote data engineering best practices across the organization
• Perform additional duties as assigned in support of departmental objectives a { text-decoration: none; color: #464feb; } tr th, tr td { border: 1px solid #e6e6e6; } tr th { background-color: #f5f5f5; }
Required Education: Bachelor's degree.
Preferred Education: Master's Level Degree
Preferred Certification: Must obtain at least one Epic Data Model certification (Clinical, Access, or Revenue) issued by Epic within 180 days of date of entry into job.
Preferred Certification: Any of the following:
Azure Data Engineer Associate (DP-203),
EPIC Cogito Certification,
HIPAA Privacy & Security Certification,
HL7/FHIR Certification.
Required Experience: Five years of relevant information technology experience. May substitute required education with years of related experience on a one-to-one basis. With preferred degree, three years of experience required.
Preferred Experience: Healthcare experience in AI/ML space is a must, two years of industry experience in a Senior Data Scientist role, knowledge of data privacy, security, and HIPAA compliance in healthcare.
The University of Texas MD Anderson Cancer Center offers excellent benefits, including medical, dental, paid time off, retirement, tuition benefits, educational opportunities, and individual and team recognition.
This position may be responsible for maintaining the security and integrity of critical infrastructure, as defined in Section 113.001(2) of the Texas Business and Commerce Code and therefore may require routine reviews and screening. The ability to satisfy and maintain all requirements necessary to ensure the continued security and integrity of such infrastructure is a condition of hire and continued employment.
It is the policy of The University of Texas MD Anderson Cancer Center to provide equal employment opportunity without regard to race, color, religion, age, national origin, sex, gender, sexual orientation, gender identity/expression, disability, protected veteran status, genetic information, or any other basis protected by institutional policy or by federal, state or local laws unless such distinction is required by law. http://www.mdanderson.org/about-us/legal-and-policy/legal-statements/eeo-affirmative-action.html
Additional Information
  • Requisition ID: 177845
  • Employment Status: Full-Time
  • Employee Status: Regular
  • Work Week: Days
  • Minimum Salary: US Dollar (USD) 123,000
  • Midpoint Salary: US Dollar (USD) 154,000
  • Maximum Salary : US Dollar (USD) 185,000
  • FLSA: exempt and not eligible for overtime pay
  • Fund Type: Hard
  • Work Location: Remote (within Texas only)
  • Pivotal Position: Yes
  • Referral Bonus Available?: Yes
  • Relocation Assistance Available?: Yes

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