Data Science DD&IT US&I

INSURGENTES, Mexico

Novartis

Working together, we can reimagine medicine to improve and extend people’s lives.

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Job Description Summary

This position is pivotal in identifying and incubating cutting-edge AI technologies that align with
the strategic goals of the company, enhancing the capabilities in data-driven decision-making
and is crucial in defining and promoting best practices in AI model development and
deployment.
AI Engineer through their forward-thinking ensure seamless integration of innovative AI
solutions into existing frameworks, ensuring they are scalable, reliable, and tailored to meet the
unique demands of the pharmaceutical industry. The AI Engineer will con-tribute to our mission
of advancing healthcare through technology, ultimately improving patient outcomes and driving
business success


 

Job Description

Key Responsibilities:
• Understand complex and critical business problems, formulates integrated analytical 
approach to mine data sources, employ statistical methods and machine learning 
algorithms to contribute to solving unmet medical needs, discover actionable insights, 
and automate processes for reducing effort and time for repeated use.
• Architect and develop end-to-end AI/ML and Gen AI solutions, focusing on scalability, 
performance, and modularity while ensuring alignment and best practices with 
enterprise architecture standards.
• Manage the implementation and adherence to the overall data lifecycle of enterprise 
data from data acquisition or creation through enrichment, consumption, retention, and 
retirement, enabling the availability of useful, clean, and accurate data throughout its 
useful lifecycle.
• High agility to be able to work across various business domains. High agility to be able to 
work across various business domains. Integrate business presentations, smart 
visualization tools and contextual storytelling to translate findings back to business
users with a clear impact.
• Independently manage budget, ensuring appropriate staffing and coordinating projects 
within the area.
• Collaborate with globally dispersed internal stakeholders and cross-functional teams to 
solve critical business problems and deliver successfully on high visibility strategic 
initiatives.


Essential Requirements
• Advanced degree in Computer Science, Engineering, or a related field (PhD preferred).
Experience
• 5+ years of experience in AI/ML engineering (data engineering could be appropriate 
depending on experience), with at least 2 years focusing on designing and deploying 
LLM-based solutions.
• Strong proficiency in building AI/ML architectures and deploying models at scale with 
experience in cloud computing platforms such as AWS, Google Cloud, or Azure.
• Deep knowledge of LLMs and experience in applying them in business contexts.
• Knowledge of containerization technologies (Docker, Kubernetes) and CI/CD pipelines 
Hands-on experience with cloud platforms (AWS, Azure, GCP) and MLOps tools for 
scalable deployment.
• Experience with API development, integration, and model deployment pipelines.
• Strong problem-solving skills and a proactive, hands-on approach to challenges.
• Ability to work effectively in cross-functional teams and communicate technical 
concepts clearly.
• Excellent organizational skills and attention to detail in managing complex systems.


 

Skills Desired

Apache Hadoop, Applied Mathematics, Big Data, Curiosity, Data Governance, Data Literacy, Data Management, Data Quality, Data Science, Data Strategy, Data Visualization, Deep Learning, Machine Learning (Ml), Machine Learning Algorithms, Master Data Management, Proteomics, Python (Programming Language), R (Programming Language), Statistical Modeling
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* Salary range is an estimate based on our AI, ML, Data Science Salary Index 💰

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Tags: API Development APIs Architecture AWS Azure Big Data CI/CD Computer Science Data governance Data management Data quality Data strategy Data visualization Deep Learning Docker Engineering GCP Generative AI Google Cloud Hadoop Kubernetes LLMs Machine Learning Mathematics ML models MLOps Model deployment Pharma PhD Pipelines Python R Statistical modeling Statistics

Region: North America
Country: Mexico

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