Summer Internship - Machine Learning Engineer
Company: webAI
Location: Austin
Posted on: April 1, 2026
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Job Description:
About Us We are establishing the first distributed Al
infrastructure dedicated to personalized Al. The evolving needs of
a data-driven society are demanding scalability and flexibility. We
believe that the future of Al is distributed and enables real-time
data processing at the edge, closer to where data is generated. We
are building a future where a company's data and IP remains private
and it's possible to bring large models directly to consumer
hardware without removing information from the model. About the
Role We are seeking a highly motivated and enthusiastic Machine
Learning Engineer Intern to join our dynamic team for the summer.
In this role, you will gain hands-on experience in developing and
implementing machine learning models, data pipelines, and
analytical solutions. Working alongside experienced professionals,
you will have the opportunity to contribute to live projects and
see the direct impact of your work. Key Responsibilities Applied
AI: Assist in designing, training, and evaluating machine learning
models for real-world use cases. RAG Systems: Help build
contextualized models and tools for efficient data ingestion and
transformation. Research & Analysis: Perform exploratory data
analysis and stay updated on the latest ML research, techniques,
and tools. Collaborative Problem-Solving: Work closely with
cross-functional teams (Data Scientists, Software Engineers,
Product Managers) to define project requirements and deliver
solutions. Documentation & Reporting: Prepare clear, concise
technical documentation and report findings to relevant
stakeholders. Quality Assurance: Contribute to code testing
processes to ensure robust, high-quality deliverables.
Qualifications Currently enrolled in a Bachelor's, Master's, or PhD
program in Computer Science, Engineering, Statistics, Mathematics,
or a related field. Foundational knowledge of machine learning
concepts, data structures, and algorithms. Proficiency in
programming languages such as Python or C++. Experience with ML
libraries/frameworks such as TensorFlow, PyTorch, ONNX, JAX or
equivalent Strong problem-solving and analytical skills, with a
keen eye for detail. Excellent communication skills and the ability
to work collaboratively in a team environment. Core Values We at
webAl are committed to living out the core values we have put in
place as the foundation on which we operate as a team. We seek
individuals who exemplify the following: Truth: Emphasizing
transparency and honesty in every interaction and decision.
Ownership: Taking full responsibility for one's actions and
decisions, demonstrating commitment to the success of our clients.
Tenacity: Persisting in the face of challenges and setbacks,
continually striving for excellence and improvement. Humility:
Maintaining a respectful and learning-oriented mindset,
acknowledging the strengths and contributions of others. Benefits
Competitive Pay Free parking at our office in downtown Austin Equal
Opportunity Employer webAl is an Equal Opportunity Employer and
does not discriminate against any employee or applicant on the
basis of age, ancestry, color, family or medical care leave, gender
identity or expression, genetic information, marital status,
medical condition, national origin, physical or mental disability,
protected veteran status, race, religion, sex (including
pregnancy), sexual orientation, or any other characteristic
protected by applicable laws, regulations and ordinances. We adhere
to these principles in all aspects of employment, including
recruitment, hiring, training, compensation, promotion, benefits,
social and recreational programs, and discipline. In addition, it
is the policy of webAl to provide reasonable accommodation to
qualified employees who have protected disabilities to the extent
required by applicable laws, regulations and ordinances where a
particular employee works.
Keywords: webAI, Cedar Park , Summer Internship - Machine Learning Engineer, IT / Software / Systems , Austin, Texas