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Sr Machine Learning Engineer( Austin only)ATX Venture PartnersAustin, Texas, United States

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Sr Machine Learning Engineer( Austin only)

ATX Venture Partners
  • US
    Austin, Texas, United States
  • US
    Austin, Texas, United States

About

The Opportunity As a Senior Machine Learning Engineer at Autonomize, you will lead the development and deployment of machine learning solutions with an emphasis on large language models (LLMs), vision models, and classic NLP models. The ideal candidate will have a proven track record in these areas, particularly within healthcare contexts, and will play a significant role in advancing our AI-driven healthcare optimized AI Copilots and Agents.
Key Responsibilities
Help fine‑tune or prompt engineer large language models (LLMs) for various healthcare applications across various customer engagements.
Develop and refine our approach to handling vision‑based data using state‑of‑the‑art VLM models capable of processing and analysing medical documents, healthcare forms in various formats and other visual data accurately.
Create and enhance classic NLP models to understand and generate human language in healthcare settings, supporting clinical documentation, and patient interaction.
Collaborate with multi‑disciplinary teams including data scientists, ml engineers, healthcare clients, and product managers to deliver robust solutions.
Ensure models are efficiently deployed and integrated into healthcare systems, maintaining high performance and scalability.
Mentor and provide guidance to junior engineers and data scientists, fostering a culture of continuous learning and innovation.
Conduct rigorous testing, validation, and tuning of models to ensure accuracy, reliability, and compliance with healthcare standards.
Deep understanding of various training techniques including distributed training on GPUs and TPUs.
Stay informed on the latest research, tools, and technologies in machine learning, particularly those applicable to language and vision processing in healthcare.
Document methodologies, model architectures, and project outcomes effectively for both technical and non‑technical audiences.
Qualifications
Bachelor's or Master's degree in Computer Science, Engineering, Data Science, or a related field.
5‑7 years of experience in machine learning engineering, with a significant track record in developing production‑grade models and model pipelines in a regulated industry such as healthcare.
Hands‑on expertise in working with large language models (e.g., GPT, BERT), computer vision models, and classic NLP technologies.
Proficient in programming languages such as Python, with extensive experience in ML libraries/frameworks like TensorFlow, PyTorch, OpenCV, etc.
Strong understanding of deep learning techniques, model fine‑tuning, hyper‑parameter optimization, and model optimisation.
Proven experience in deploying and managing ML models in production environments.
Excellent analytical skills, with a problem‑solving mindset and the ability to think strategically.
Strong communication skills for articulating complex concepts to diverse audiences.
Working knowledge or experience in MLOps and LLMOps using tools like mlflow, kubeflow.
Working knowledge of basic software engineering principles and best practices.
Demonstrated working knowledge and experience on classic ML techniques and frameworks.
Nice to have: Knowledge of Cloud‑vendor based ML platforms such as Azure ML, SageMaker.
Who you are as a person/leader
Owner mentality – For you, the buck stops at you, you own it, you will learn it, and you will get it done.
You are naturally curious. Always experimenting rather than hypothesising – You like to push boundaries, you figure things out, and experiment your way through any problem.
You are passionate, unafraid, and loyal to the team & mission.
You love to learn & win together.
You communicate well through voice, writing, chat or video, and work well with a remote/global team.
Nice to have competencies
Large/Complex organisation experience in deploying NLP/ML in production.
Experience in efficiently scaling ML model training and inferencing.
Experience with Big Data technologies using Kafka, Spark, Hadoop, Snowflake.
What We Offer
A chance to make a real impact in the future of healthcare.
Autonomy, ownership, and the ability to chart your own growth path.
Competitive compensation and benefits.
100% employer‑paid health, vision, and dental insurance.
Retirement plans (401k), disability insurance, employee assistance programmes.
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  • Austin, Texas, United States

Languages

  • English
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