This is resourced to do real post-training at scale – committed investment in GPU compute and training infrastructure, not toy fine-tunes.
As a Research Engineer on our post-training team, you will design, train, evaluate, and align the models that reason about healthcare – working across the full post-training lifecycle to shape model behavior for clinical and operational decisioning across the industry. Healthcare decisioning is one of the cleanest verifiable-reward domains outside math and code: the problems are hard. We ground that reward in real signals – clinical policy and criteria, adjudicated outcomes, and clinical-expert judgment – so correctness is checkable rather than asserted.
You will own the post-training stack for our clinical reasoning models end to end – from data and reward design through trained, evaluated models that ship. This is not a prompt-engineering role. We are looking for people who understand not just how to use LLMs, but how to improve and shape model behavior through advanced post-training.
You do not need a healthcare background. We pair every engineer with clinical and domain experts and teach you the domain – you bring the modeling depth.
We hire on demonstrated depth, not years – the level you join at is determined through our interview process, based on the depth and judgment you demonstrate, not your years in a title.
Work you’ll do
Post-training & alignment
Reward modeling & data
Efficient fine-tuning, training & inference infrastructure
Small language models & open-weight models
Evaluation, safety & red teaming
The team
Deloitte brings together AI researchers, modeling and platform engineers, architects, clinical and domain specialists, and product leaders to build, deploy, and operate verticalized AI systems across software, data, models, and cloud infrastructure – engineered for one of the most complex operating environments in the world. The work spans the healthcare industry – payers, providers, and life sciences – and involves genuinely hard reasoning problems, nuanced operational workflows, and a high bar for reliability, with little tolerance for shallow or unreliable outputs. We pair frontier AI research with production-grade engineering, and we ship into real clinical and operational settings rather than leaving models in the lab.
You can go deep. The team sub-specializes across post-training research, data and reward engineering, and training and inference infrastructure – you won’t be expected to own all of it alone.
Required Qualifications
Preferred Qualifications
Compensation
Base salary is benchmarked to leading technology companies rather than traditional consulting scales, and the role carries a substantial performance-based incentive opportunity designed to grow with the value you help create – startup-style upside, with the backing of a committed, well-capitalized platform. The estimated base salary range is $189,200-$372,900 (not adjusted for geographic differential); actual base pay depends on your skills, experience, and level, and you may also be eligible for a discretionary annual incentive based on individual and organizational performance.
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