Job Title: AI Research & Innovation – AI researcher
Job Family: Program/Delivery/Capability Management
No. of Positions: 2
Job Description (Posting)
About the Role: We are seeking an experienced Applied AI Research & Engineering Researcher to lead the technical foundation and innovation within our AI division. This leader will define the core ML/AI research agenda, oversee the development of novel algorithms and models, and drive their robust deployment into production. The role is hands‑on technical leadership for someone who excels at managing a team of researchers and translating complex academic concepts into scalable, reliable enterprise solutions.
Responsibilities
* Technical Vision & Research Strategy: Define the multi‑year research and engineering roadmap, lead deep‑learning and generative AI model development, and translate academic research into production.
* MLOps & Production Engineering: Establish MLOps best practices, enforce CI/CD, ensure scalable, low‑latency AI systems, and drive resource optimisation.
* Team Leadership & Technical Mentorship: Recruit, mentor, and manage a high‑performing team of Applied AI Scientists and ML Engineers, foster a research‑driven culture, and maintain code quality.
Qualifications and Competencies
* 15+ years hands‑on experience in Machine Learning, Deep Learning, or AI Research with focus on building and deploying complex models.
* 5+ years technical leadership managing Data Scientists and ML Engineers.
* Expert‑level proficiency in core ML frameworks (PyTorch, TensorFlow) and data science languages (Python/R).
* Experience building a commercial practice or product focused on Generative AI and Large Language Models (LLMs).
* Demonstrated expertise in at least two major AI domains (Deep Learning, NLP, Computer Vision).
* Proven track record translating technical output into commercial results.
* Deep practical knowledge of MLOps principles and experience with cloud‑native ML services (Google Cloud Vertex AI, SageMaker, Azure ML).
* Ph.D. or Master’s degree in Computer Science, Machine Learning, or a highly quantitative field, or equivalent demonstrated technical leadership experience.
* Bachelor of Technology/Engineering.
Technical / Functional Skills
* Strong portfolio of research publications (NeurIPS, ICML, KDD) or patents related to applied AI.
* Extensive experience with distributed computing frameworks (Spark, Ray) for large‑scale model training and inference.
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