What you will be doing:
Guiding customers through the end-to-end process of GenAI adoption—from requirements gathering and proof-of-concept development to deployment, integration, and ongoing optimization.
Design, develop, and optimize solutions tailored for healthcare and life science applications, such as AI scientists and autonomous lab
Architect and implement generative AI workflows for use cases including data ingestion, synthetic data generation, domain-adapted pretraining of foundation LLMs, fine-tuning reasoning models, and orchestration of multi-agent LLM systems using NVIDIA’s GPU-accelerated platforms.
Keep up to date on AI advancements in healthcare, including agentic AI techniques, foundation models for protein, small molecules, and genomics.
Develop proof-of-concept demonstrations showcasing how NVIDIA’s technology accelerates healthcare innovations.
Engage with healthcare executives, IT managers, data scientists, clinicians, and developers to promote the adoption of AI-powered healthcare applications.
Share your findings through training sessions, white papers, or blog posts.
Some travel may be required for on-site customer engagements.
What we need to see:
MS, PhD or equivalent experience in Computer Science, Biomedical Engineering, Computational Biology, or related fields with strong applied experience.
5+ years experience
Proven track record in software development related to AI/ML in healthcare or life sciences.
Deep experience with end-to-end generative AI solutions: data ingestion, preprocessing, model training, agentic tool development, pipeline deployment and evaluation.
Proficiency in Python and AI/ML frameworks (PyTorch, Langchain, or building custom framework) .
Experience deploying and scaling agentic AI solutions in cloud environments (AWS Bedrock, Azure AI foundry, Vertex AI, etc).
Excellent communication skills with the ability to present complex technical concepts to both technical and non-technical audiences.
Ways to stand out from the crowd:
Experience building, deploying, and optimizing agentic AI systems for healthcare and life sciences, especially for scientific software vendors and data platforms
Understanding basic biomedical concepts and modalities, such as sequence, structure, function, and clinical phenotypes.
Familiarity with AI deployment/inference technologies such as TensorRT, TRT-LLM.
Established thought leadership through publications or presentations on AI/ML applications in healthcare and life science as well as experience collaborating with pharma, techbio, and healthcare providers. Passionate about improving patient outcomes through innovative solutions.
You will also be eligible for equity and .
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