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AI Technical Lead / Architect

Novartis Farmacéutica

Madrid

Presencial

EUR 50.000 - 70.000

Jornada completa

Hace 24 días

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Descripción de la vacante

An established industry player is seeking an experienced AI Technical Lead / Architect to drive the development of advanced AI solutions that enhance drug development capabilities. In this pivotal role, you will define and implement a generative AI architecture, ensuring compliance with regulatory standards while optimizing performance and scalability. You will lead the deployment of large language models, collaborate with cross-functional teams, and stay at the forefront of AI advancements. If you're passionate about making a meaningful impact on patients' lives through innovative technology, this opportunity is perfect for you.

Formación

  • 10+ years in AI/ML development with 2+ years in an architect role.
  • Strong proficiency in Generative AI and LLMs for pharma applications.

Responsabilidades

  • Define and implement a generative AI architecture for drug discovery.
  • Collaborate with cross-functional teams to align GenAI initiatives.

Conocimientos

Generative AI
Large Language Models (LLMs)
Deep Learning
Data Engineering
AI/ML Development
Cloud AI Services
CI/CD
Containerization
Multimodal AI
ETL Pipelines

Educación

Bachelor’s degree in Computer Science
Master’s degree in AI or Data Science

Herramientas

TensorFlow
PyTorch
Hugging Face
LangChain
Scikit-learn
Spark
Kafka
Databricks
AWS Bedrock
Azure OpenAI

Descripción del empleo

We are looking for an experienced AI Technical Lead / Architect with strong skills in machine learning and generative AI. In this role, you will offer technical direction, promote new ideas, and ensure the successful rollout of advanced AI solutions to enhance our drug development capabilities.

The ideal candidate will guide our AI projects, offer technical direction, promote new ideas, and ensure the successful rollout of advanced AI solutions. Ultimately, you will have a critically important positive impact on the lives of patients.

About the Role Key Responsibilities:
  1. GenAI Strategy & Roadmap: Define and implement a generative AI architecture and roadmap aligned with business goals in pharma and life sciences.
  2. Solution Design: Architect scalable GenAI solutions for drug discovery, medical writing automation, clinical trials, regulatory submissions, and real-world evidence generation.
  3. LLM Development & Optimization: Work with data scientists and ML engineers to develop, fine-tune, and optimize large language models (LLMs) for life sciences applications, such as scientific literature analysis, regulatory intelligence, and patient engagement.
  4. AI Infrastructure: Design GenAI solutions leveraging cloud platforms (AWS, Azure, GCP) or on-premises infrastructure while ensuring data security and regulatory compliance.
  5. MLOps & Deployment: Implement best practices for GenAI model deployment, monitoring, and lifecycle management within GxP-compliant environments.
  6. Compliance & Governance: Ensure GenAI solutions comply with regulatory standards (FDA, EMA, GDPR, HIPAA, GxP, 21 CFR Part 11) and adhere to responsible AI principles, including bias mitigation and exploitability.
  7. Performance Optimization: Drive efficiency in generative AI models, ensuring cost optimization and scalability while maintaining data integrity and compliance.
  8. Stakeholder Collaboration: Work with cross-functional teams, including platform teams and Drug Development teams, to align GenAI initiatives with enterprise and industry-specific requirements.
  9. Research & Innovation: Stay updated with the latest advancements in GenAI, multimodal AI, AI agents, and synthetic data generation to incorporate emerging technologies into the company’s AI strategy.
Required Qualifications:
  1. Bachelor’s or master’s degree in computer science, AI, Data Science, Bioinformatics, or a related field.
  2. 10+ years’ experience in Big data, AI / ML development with at least 2 years in an AI Architect or GenAI Architect role in pharma, biotech, or life sciences.
  3. Strong proficiency in Generative AI, large language models (LLMs), multimodal AI, and deep learning for pharma applications, including experience leading the deployment of a Lightweight LLM on a SaaS Platform.
  4. Exposure to AI / ML frameworks (TensorFlow, PyTorch, Hugging Face, LangChain, Scikit-learn, etc.).
  5. Experience with data engineering, ETL pipelines, and big data technologies (Spark, Kafka, Databricks, etc.).
  6. Solid knowledge of cloud AI services (AWS Bedrock, Azure OpenAI).
  7. Strong familiarity with CI / CD, containerization (Docker, Kubernetes), vector databases, and real-time model monitoring.
  8. Proficiency in English (oral & written).
Preferred Qualifications:
  1. Experience deploying LLMs in a Pharma SaaS Platform.
  2. Experience in AI / GenAI applications within a Life Science, Pharmaceutical or Biomedical field.
  3. AI / ML certifications from AWS, Google, or Microsoft.
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