GenAI Engineer – Retrieval-Augmented Generation (RAG)

Posted 5 Days Ago
Be an Early Applicant
Hiring Remotely in London, England
Remote
Mid level
Healthtech • Biotech
The Role
Design and optimize RAG pipelines that integrate large language models with retrieval systems, enhancing patient-clinician interactions through reliable, context-aware data surfacing.
Summary Generated by Built In

all.health is at the forefront of revolutionizing healthcare for millions of patients worldwide. Combining more than 20 years of proprietary wearable technology with clinically relevant signals, all.health connects patients and physicians like never before with continuous, data-driven dialogue. This unique position of daily directed guidance stands to redefine primary care while helping people live happier, healthier, and longer.

Education

  • Masters Degree

About the Role

  • You will design, build, and optimize RAG pipelines that combine large language models (LLMs) with domain-specific retrieval systems, enabling natural language understanding and reasoning over patient data, clinical guidelines, and health records. Your work will directly impact how patients and clinicians interact with our platform, enabling safe, accurate, and context-aware content surfacing.

Responsibilities

  • Design and implement RAG architectures using open-source and potentially proprietary LLMs (e.g., LLaMA, Mistral, OpenAI, Anthropic).
  • Build and maintain retrieval pipelines over structured and unstructured health data (EHRs, patient notes, device logs, clinical documentation).
  • Develop indexing strategies using vector databases (e.g., FAISS, Weaviate, Pinecone) and embedding models (e.g., BioBERT, ClinicalBERT).
  • Integrate RAG outputs into user-facing applications, ensuring responses are grounded, reliable, and privacy-compliant.
  • Work closely with product, clinical, and data science teams to fine-tune prompts, evaluate responses, and iterate on model performance.
  • Build evaluation pipelines for factuality, relevance, and safety using synthetic and real-world datasets.
  • Contribute to infrastructure for scalable GenAI deployments and model versioning.
  • Stay up to date with the latest research in GenAI and health tech applications of LLMs.

Requirements

  • 3+ years of experience working in machine learning / NLP roles, with recent focus on LLMs and/or GenAI.
  • Strong proficiency in Python, deep learning frameworks (PyTorch or TensorFlow), and GenAI libraries (LangChain, LlamaIndex, Transformers).
  • Hands-on experience with vector search, embedding models, and retrieval pipelines.
  • Familiarity with prompt engineering, prompt tuning, and evaluation of generative model outputs.
  • Experience working with healthcare or sensitive data (HIPAA/GDPR compliance awareness).
  • Strong problem-solving skills and ability to move fast in a startup environment.
  • Bonus: Experience with MLOps, Kubernetes, AWS/GCP, and deploying models in production.

Work Permit

  • UK work permit required

Top Skills

AWS
Biobert
Clinicalbert
Faiss
GCP
Kubernetes
Langchain
Llamaindex
Pinecone
Python
PyTorch
TensorFlow
Transformers
Weaviate
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The Company
HQ: San Francisco, CA
50 Employees
On-site Workplace
Year Founded: 2017

What We Do

all.health has developed a comprehensive preventative and proactive healthcare platform that combines clinical-grade sensors, machine learning, patient histories, insurance claims data, and other information to provide real-time at-risk screening for several disease conditions; these include acute respiratory infections such as COVID-19, and chronic conditions such as hypertension and diabetes. Contextualized 24/7 data along with clinician input and interventions will then be used to guide positive behavior changes. The premise is to catch various health conditions early and help reverse or manage the negative effects.

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