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Internship Medical Data Annotation Jobs in Texas

Experience designing data annotation workflows, labeling guidelines, or label quality processes is ... Take advantage of our comprehensive benefits package, including medical, dental, vision, life ...

Experience designing data annotation workflows, labeling guidelines, or label quality processes is ... Take advantage of our comprehensive benefits package, including medical, dental, vision, life ...

WHAT YOU'LL DO • Execute Data labelling and annotation tasks across speech and voice datasets ... • Medical, Dental, and Vision Insurance • Free Breakfast, Lunch, and Dinner (where applicable ...

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Internship Medical Data Annotation information

What is the difference between Internship Medical Data Annotation vs Medical Data Labeling Specialist?

AspectInternship Medical Data AnnotationMedical Data Labeling Specialist
CredentialsTypically students or entry-level with basic knowledgeRelevant certifications or experience in data annotation
Work EnvironmentInternship programs, often in healthcare or tech companiesFull-time or part-time roles in healthcare tech firms
Industry UsageUsed for training and educational purposes, entry-level projectsOperational roles focusing on data accuracy and labeling

Internship Medical Data Annotation roles are usually entry-level positions designed for students or newcomers to gain experience, often within internship programs. Medical Data Labeling Specialists are more experienced roles focused on precise data annotation for AI training, requiring relevant skills or certifications. While both involve working with medical data, internships are more educational, whereas specialists handle ongoing, professional data labeling tasks.

What are the most commonly searched types of Medical Data Annotation jobs in Texas? The most popular types of Medical Data Annotation jobs in Texas are:
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Software Engineer Intern - ML Systems

Apptronik

Austin, TX

Other

Posted yesterday

New


Job description

JOB SUMMARY
Apptronik is seeking a Software Engineering Intern to join our ML Ops team for a 12-week fall project. In this role, you will work at the intersection of robotics and applied machine learning - building data annotation tooling and optimizing ML models that run on humanoid hardware. You
will help close the loop between raw robot experience data and deployable, hardware-ready models for Apollo, Apptronik's humanoid robot.

You will take ownership of two interconnected workstreams: (1) building or extending data annotation tools that let the team efficiently label and curate robot experience data, and (2) applying ML model optimization techniques - quantization, distillation, and inference profiling - to improve the throughput and efficiency of models deployed on physical systems. You will work alongside the simulation engineering, data platform, and learning teams, and contribute directly to how Apptronik turns ML research into production robot behavior.

ESSENTIAL DUTIES AND RESPONSIBILITIES

  • Data Annotation Tooling: Design and implement tooling for efficient annotation and curation of robot experience data - including sensor observations, trajectories, and task outcomes - in formats compatible with the team's data lake (MCAP, S3/MinIO).
  • ML Model Optimization: Profile, quantize, and/or distill ML models (RL policies or action heads) to reduce inference latency and memory footprint for deployment on robot hardware.
  • Hardware-Aware Evaluation: Build evaluation harnesses that benchmark optimized model performance against baseline, tracking metrics relevant to physical deployment (latency, memory, task success rate).
  • Integration with Existing Infra: Connect annotation outputs and optimized model artifacts with the team's existing artifact storage (S3/MinIO), training pipelines, and Kubernetes-based execution environment.
  • Documentation & Handoff: Produce design docs, runbooks, and example configurations so tooling can be adopted by controls, learning, and data platform teams after the internship.

SKILLS AND REQUIREMENTS

  • Python Proficiency: Demonstrated ability to write clean, tested, maintainable code for ML tooling, data pipelines, and automation.
  • Linux & Development Tools: Comfortable in a Linux environment; competence with Git, Docker, and modern Python tooling (pytest, uv/poetry, type hints).
  • ML Framework Experience: Hands-on experience with PyTorch or similar; familiarity with model quantization (INT8/FP16), ONNX export, or TensorRT is a plus.
  • Robotics Background: Coursework or project experience with robotic systems - kinematics, control, sensors, or simulation (ROS, MuJoCo, Isaac Sim, Gazebo, or comparable).
  • Data Pipeline Exposure: Experience moving data between annotation, training, evaluation, and storage stages.
  • Annotation Tooling (preferred): Prior experience with data annotation workflows, labeling interfaces (Label Studio, CVAT, custom tooling), or human-in-the-loop data pipelines.
  • Reinforcement Learning o: Familiarity with RL training loops, policy rollouts models.

EDUCATION and/or EXPERIENCE

  • Current enrollment in a Bachelor's or Master's degree program in Computer Science, Electrical Engineering, Robotics, or a related field.
  • Experience with projects involving robotics, ML model deployment, data annotation, or
    developer tooling is ideal.

PHYSICAL REQUIREMENTS

  • Prolonged periods of sitting at a desk and working on a computer.
  • Must be able to lift 15 pounds at times.
  • Vision to read printed materials and a computer screen.
  • Hearing and speech to communicate.