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ABOUT THE ROLE
We are looking for a Research Engineer to build applied NLP and LLM systems for healthcare and oncology workflows. You will work on real-world clinical text, information extraction, patient-trial matching, summarization, RWE abstraction, and structured outputs from clinical documents.
This role is ideal for someone who enjoys hands-on model development, experimentation, evaluation, and building practical ML systems that can eventually move toward production.
WHAT YOU WILL DO
WHAT WE EXPECT
NICE TO HAVE
SUCCESS IN 6 MONTHS
About Triomics
Triomics is building the agentic AI layer for oncology EHRs. Cancer hospitals spend billions on highly trained staff manually reading unstructured patient records - pathology reports, clinical notes, genomic panels - to power workflows like trial matching, registry curation, visit prep, and quality reporting. We replace that manual work with task-driven AI agents that sit inside the EMR and process records at scale, in real time.
Our platform is trusted by leading cancer centers including Memorial Sloan Kettering, Mount Sinai, and Yale Cancer Center. We have grown 10x in the last year and process millions of oncology medical documents monthly.
Our investors include Battery Ventures, Lightspeed, General Catalyst, Nexus Venture Partners, and Y Combinator.
Why Join Triomics
Perks & Benefits
Job ID: 150846723
Skills:
Machine Learning, Python, Generative Models, Data-Driven Decision Systems, Quantum-Inspired Methods, Quantum Machine Learning, Quantum Computing Concepts, Simulation, Hybrid Quantum-Classical Approaches, Optimization
Skills:
Python, ML frameworks, reinforcement learning, agent-based systems
Skills:
Machine Learning, Jax, Tensorflow, Pytorch, Linux, Python, Computational Fluid Dynamics, Scientific Computing, GPU-based training, physics-informed neural networks, neural operators, surrogate modeling, design of experiments, reduced-order modeling, HPC environments, parallel computing
Skills:
Machine Learning, Python, Generative AI, LLMs, Modern ML Frameworks, Recommendation Engines, Deep Learning Architectures
Skills:
Java, Github, Rust, Git, Typescript, Javascript, Docker, Python, Integration Tests, SWE-bench, Go, Terminal-Bench, DeepSWE, unit tests, Linux shell scripts, CI workflows, SWE-Bench Pro, test harnesses