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Senior AI/ML Quant Research Engineer & Associate Vice President

Goldman Sachs Bank AG

Singapore

On-site

SGD 100,000 - 150,000

Full time

Yesterday
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Job summary

A leading global investment firm is seeking a Senior AI/ML Quant Research Engineer in Singapore. In this role, you will develop advanced AI/ML models to address complex financial challenges and drive commercial impact. Candidates must possess a Ph.D. or Master’s in a quantitative discipline, with expert-level Python programming skills and extensive experience in machine learning techniques. This is an outstanding opportunity to contribute to financial innovation in a dynamic team environment.

Qualifications

  • Ph.D. or Master’s degree in quantitative discipline required.
  • Expert-level programming proficiency in Python needed.
  • Proven ability to conduct research and solve complex problems.

Responsibilities

  • Lead the development of AI/ML models for financial applications.
  • Design and validate predictive models in complex financial environments.
  • Engineer high-quality code and maintain resilient data pipelines.

Skills

Programming proficiency in Python
Expertise in machine learning frameworks
Strong problem-solving skills
Exceptional communication skills

Education

Ph.D. or Master's degree in a quantitative discipline

Tools

NumPy
Pandas
Scikit-learn
PyTorch
TensorFlow
Job description
Core Engineering, Applied AI, Senior AI/ML Quant Research Engineer, Associate/ Vice President, Singapore Singapore

The Applied AI team at Goldman Sachs operates at the intersection of artificial intelligence, quantitative finance, and technology. Our mandate is to research, develop, and deploy cutting‑edge AI/ML models that drive commercial impact and solve the most complex predictive challenges across the firm. We function as a center of excellence, partnering with trading, sales, and engineering divisions to pioneer next‑generation quantitative technologies that redefine our revenue‑generating capabilities.

Who We Are

The Applied AI team at Goldman Sachs operates at the intersection of artificial intelligence, quantitative finance, and technology. Our mandate is to research, develop, and deploy cutting‑edge AI/ML models that drive commercial impact and solve the most complex predictive challenges across the firm. We function as a center of excellence, partnering with trading, sales, and engineering divisions to pioneer next‑generation quantitative technologies that redefine our revenue‑generating capabilities.

Your Impact

As a Quantitative AI/ML Researcher, you will be at the forefront of financial innovation. You will have the unique opportunity to apply your deep expertise in machine learning and quantitative analysis to high‑impact projects, from developing sophisticated alpha‑generation models to engineering state‑of‑the‑art market‑making and pricing systems. This role offers end‑to‑end ownership, from initial research and prototyping to deploying scalable, robust models into our production trading environment. You will tackle the unique challenges of applying AI in the high‑stakes, non‑stationary world of quantitative trading and help shape the future of finance.

  • Model Architecture & Implementation: Spearhead the end‑to‑end lifecycle of AI/ML models, from initial research and ideation through to production deployment, with a clear focus on driving measurable commercial impact.
  • Advanced Predictive Modeling: Design, train, and validate novel models for predictive tasks in complex financial time series, including deep learning, reinforcement learning, and state‑space models.
  • Explainable AI (XAI) & Governance: Integrate and advance state‑of‑the‑art XAI methodologies to ensure model transparency, interpretability, and robustness. Satisfy the rigorous demands of internal model validation, risk management, and regulatory frameworks.
  • MLOps & Engineering Excellence: Engineer and maintain high‑quality, production‑grade code and resilient data pipelines for high‑volume, low‑latency financial data. Adhere to and promote best practices in MLOps for versioning, containerization, continuous integration/deployment, and real‑time monitoring.
Core Qualifications
  • A Ph.D. or Master’s degree in a quantitative discipline such as Computer Science, Statistics, Quantitative Finance, Mathematics, Physics, or Electrical Engineering.
  • Expert‑level programming proficiency in Python and deep experience with its scientific computing and machine learning ecosystem (e.g., NumPy, Pandas, Scikit‑learn, PyTorch, TensorFlow).
  • A profound theoretical and applied understanding of machine learning techniques, including LLMs, deep learning architectures, reinforcement learning, probabilistic models, and classical statistical methods.
  • Proven ability to independently conduct research, manage complex datasets, and solve challenging, open‑ended problems with a data‑driven approach.
  • Exceptional communication and interpersonal skills, with the ability to articulate complex technical concepts to both specialist and non‑specialist audiences.
Preferred Qualifications
  • Min. 3 years (for Associate) / 8 years (for VP) of distinguished professional or academic research experience, demonstrated by a track record of building and fine‑tuning large‑scale deep learning models (e.g., Transformers) for sequential or time‑series data.
  • Prior experience in quantitative role at a leading buy‑side or sell‑side institution (e.g., quantitative trading, statistical arbitrage, high‑frequency market making).
  • Direct, hands‑on experience applying foundation models (e.g., LLMs) and transfer learning techniques to novel, non‑NLP domains.
ABOUT GOLDMAN SACHS

At Goldman Sachs, we commit our people, capital and ideas to help our clients, shareholders and the communities we serve to grow. Founded in 1869, we are a leading global investment banking, securities and investment management firm. Headquartered in New York, we maintain offices around the world.

Equal Opportunity Employer

Goldman Sachs is an equal opportunity employer and does not discriminate on the basis of race, color, religion, sex, national origin, age, veterans status, disability, or any other characteristic protected by applicable law.

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