Director, AI/ML Engineering
Philadelphia Walnut Street, United States
GSK
At GSK, we unite science, technology and talent to get ahead of disease togetherJoin us to deploy and implement cutting-edge AI/ML models addressing complex challenges in life science R&D areas including target choice, patient identification, molecule design and clinical trial effectiveness. Collaborate with data scientists and leverage cloud infrastructure to build scalable training pipelines, ensuring rapid iterations and operational excellence. Develop robust backend systems and evaluation frameworks while engaging in technology assessments and co-development with strategic partners to support GenAI products across R&D functions.
Responsibilities:
Deploy and implement advanced AI/ML models to tackle complex problems in target choice, patient identification, molecule design/chemistry, manufacturing and controls (CMC), and clinical trial effectiveness.
Design and implement distributed training pipelines for LLMs using tools such as DeepSpeed, ensuring scalability and efficiency.
Collaborate with Data Scientists in LLM customization: pre-training, fine-tuning, reinforcement learning with human feedback (RLHF), and applying parameter efficient fine-tuning (PEFT) techniques.
Define and implement repeatable AI/ML pipelines to ensure rapid iterations of data science experiments while leveraging the cloud infrastructure to implement industry best practice in MLOps.
Model operationalization and monitoring on Azure and GCP infrastructures with close collaboration with the DevSecOps team.
Build scalable, reusable backend systems including the state-of-the-art agentic frameworks to support GenAI products across R&D functions. Develop robust logging, telemetry, and evaluation harnesses to ensure reliable model performance.
Technology assessment of external product solutions and co-development with strategic partners
Create and maintain pipelines for producing training/testing/validation data sets
Build and maintain model evaluation framework
Basic Qualifications:
BS degree in computer science, engineering, bioinformatics or applied math
5+ years of engineering experience
Experience working with LLM technologies, including GenAI embedding techniques, modern model architecture, retrieval-augmented generation (RAG), fine tuning/pre-training AI models, and evaluation benchmarks
Experience in Python, TensorFlow/PyTorch, and scalable ML architectures.
Experience in Agentic framework, i.e., AutoGen and LangGraph
Experience in Azure and GCP cloud services
Experience in full stack software development, and knowledge of software engineering principles around testing, code reviews and deployment.
Preferred Qualifications:
MA degree in computer science or engineering
10+ years of combined full stack, data engineering, Azure/GCP cloud services, and AI engineering experience
Experience with graph databases in the context of GraphRAG
Experience with data lake-house architecture, data catalog, master data management applications
Experience in establishing AI/ML and agent best practices, standards, and ethics
Experience in AI/ML applications in life science domain areas: pre-clinical research, clinical trial design and operation, precision medicine, regulatory science, and CMC.
Experience in reducing the cost of running a service / capability while maintaining or improving performance efficiencies
Strong analytical and problem-solving skills, with a passion for shaping AI-driven workflow.
Strong written and verbal communication skills
#LI-GSK
Please visit GSK US Benefits Summary to learn more about the comprehensive benefits program GSK offers US employees.
Why GSK?
Uniting science, technology and talent to get ahead of disease together.
GSK is a global biopharma company with a special purpose – to unite science, technology and talent to get ahead of disease together – so we can positively impact the health of billions of people and deliver stronger, more sustainable shareholder returns – as an organisation where people can thrive. We prevent and treat disease with vaccines, specialty and general medicines. We focus on the science of the immune system and the use of new platform and data technologies, investing in four core therapeutic areas (infectious diseases, HIV, respiratory/ immunology and oncology).
Our success absolutely depends on our people. While getting ahead of disease together is about our ambition for patients and shareholders, it’s also about making GSK a place where people can thrive. We want GSK to be a place where people feel inspired, encouraged and challenged to be the best they can be. A place where they can be themselves – feeling welcome, valued, and included. Where they can keep growing and look after their wellbeing. So, if you share our ambition, join us at this exciting moment in our journey to get Ahead Together.
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* Salary range is an estimate based on our AI, ML, Data Science Salary Index 💰
Tags: Architecture Azure Bioinformatics Chemistry Computer Science Data management Engineering GCP Generative AI LLMs Machine Learning Mathematics ML models MLOps Pipelines Python PyTorch R RAG R&D Reinforcement Learning Research RLHF TensorFlow Testing
Perks/benefits: Career development Health care Transparency
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