Machine Learning Engineer

Posted 23 Days Ago
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Singapore, SGP
In-Office
Mid level
Fintech • Payments • Financial Services
The Role
Design, build, deploy, and optimize scalable machine learning and AI solutions including LLMs, RAG systems and multi-agent/agentic workflows. Integrate models into production, evaluate performance, test prompts and few-shot examples, collaborate with cross-functional teams, and participate in code reviews, debugging and DevOps practices while adhering to regulatory and risk standards.
Summary Generated by Built In

At Julius Baer, we celebrate and value the individual qualities you bring, enabling you to be impactful, to be entrepreneurial, to be empowered, and to create value beyond wealth. Let’s shape the future of wealth management together.

GENERAL DESCRIPTION
We are seeking a skilled machine learning engineer (ML Eng) to join one of our agile development teams in our ML & AI ART. In this role, you will play a key part in designing, building, and maintaining robust, scalable AI solutions within a DevOps environment. You'll contribute across the entire lifecycle - from concept to deployment - and collaborate closely with cross-functional teams to deliver high-quality digital solutions.

YOUR CHALLENGE

KEY FEATURES and accountabilities

Key Responsibilities

  • Develop, deploy, and optimize machine learning and AI solutions that address complex business challenges.
  • Create multi-agent systems and equip AI models with function/tool-calling capabilities.
  • Design and implement RAG systems to ground AI responses in enterprise data.
  • Assess and integrate AI models (e.g. LLMs) ensuring optimal performance and reliability.
  • Optimize agentic workflows and AI agents for production use cases.
  • Testing and optimizing system prompts and few-shot example to ensure accurate, consistent, and safe AI outputs.
  • Performance evaluation of machine learning and AI models using appropriate metrics, evaluation sets and techniques, and continuously iterate and improve upon them.
  • Collaborate with platform teams, data engineers, data scientists, and other stakeholders to integrate machine learning solutions into existing systems and processes.
  • Participate in code reviews, testing, and debugging to ensure the quality and reliability of machine learning solutions.

Regulatory Responsibilities &/OR Risk Management

  • Demonstration of appropriate values and behaviours including but not limited to standards on honesty and integrity, due care and diligence, fair dealing (treating customers fairly), management of conflicts of interest, competence and continuous development, adequate risk management, and compliance with applicable laws and regulations.

YOUR PROFILE

SKILLS REQUIREMENTS

Personal and Social

  • Strong problem-solving and analytical skills, with the ability to think critically and creatively about complex challenges.
  • Excellent communication and collaboration skills, with the ability to work effectively with cross-functional teams and stakeholders at all levels of the organization.
  • Ability to manage personal workloads effectively, to prioritize tasks, manage timelines, and deliver high-quality results on schedule.
  • Continuous learning mindset, with a passion for staying up to date with the latest advancements in machine learning and artificial intelligence.
  • Attention to detail and commitment to producing high-quality, reliable, and maintainable code.

Professional and Technical

  • Bachelor's or Master's degree in Data Science, Computer Science, Mathematics, Statistics, or a related field.
  • Strong programming skills in Python with experience in machine learning libraries and deep learning frameworks such as TensorFlow or PyTorch.
  • Proven experience working with Large Language Models (LLMs).
  • Good understanding of AI agents & agentic workflows, LLM orchestration frameworks and reasoning patterns.
  • Experience with data pre-processing, feature engineering, and model selection and evaluation techniques.
  • Knowledge of statistical and mathematical concepts relevant to machine learning, such as probability, linear algebra, and optimization.
  • Understanding software development best practices, including version control, testing, and documentation.
  • Excellent problem-solving and debugging skills, with the ability to identify and resolve issues quickly and effectively.
  • Relevant work experience in machine learning, data science or a related field.

We are looking forward to receiving your full job application through our online application tool. Further interesting job opportunities can be found on our Career site.

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Skills Required

  • Bachelor's or Master's degree in Data Science, Computer Science, Mathematics, Statistics, or related field
  • Strong programming skills in Python
  • Experience with machine learning libraries and deep learning frameworks such as TensorFlow or PyTorch
  • Proven experience working with Large Language Models (LLMs)
  • Experience designing and implementing RAG systems to ground AI responses in enterprise data
  • Experience creating multi-agent systems and optimizing agentic workflows
  • Good understanding of LLM orchestration frameworks and reasoning patterns
  • Experience with data pre-processing, feature engineering, model selection and evaluation techniques
  • Knowledge of statistical and mathematical concepts relevant to ML (probability, linear algebra, optimization)
  • Understanding of software development best practices, including version control, testing, and documentation
  • Relevant work experience in machine learning, data science or a related field
  • Strong problem-solving, communication, collaboration, and continuous learning mindset
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The Company
HQ: Zürich
7,326 Employees
Year Founded: 1890

What We Do

The Julius Baer Group is present in over 60 locations worldwide, including Zurich (Head Office), Bangkok, Dubai, Dublin, Frankfurt, Geneva, Hong Kong, London, Luxembourg, Madrid, Mexico City, Milan, Monaco, Mumbai, Santiago de Chile, São Paulo, Shanghai, Singapore, Tel Aviv, and Tokyo. Social media terms of use: https://www.juliusbaer.com/en/legal/social-media/

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