Machine Learning Engineer

Manulife Insurance Malaysia

Toronto

Hybrid

CAD 94,000 - 144,000

Full time

2 days ago
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Benefits offered by this job

Health, dental, mental health benefits
Retirement savings plans
Generous paid time off (holidays, vac,
Personal and sick days

Job summary

Manulife Financial Corporation is seeking an innovative Machine Learning Engineer to design, build, and operate scalable ML platforms and pipelines. You’ll work with cross-functional teams to deliver production-grade ML and GenAI capabilities across insurance and financial services.

The role involves collaborating with data scientists and engineers to improve customer experiences and business impact, with a hybrid working arrangement and global exposure.

Qualifications

  • At least 4 years of experience in machine learning engineering delivering production ML systems.
  • Strong Python programming with hands-on ML frameworks and libraries.
  • Experience with MLOps, CI/CD, and model lifecycle tooling.
  • Cloud and containerization knowledge (Docker, Kubernetes).
  • Bachelor’s degree or equivalent in a technical field.

Responsibilities

  • Build reusable patterns for data, ML, and GenAI workloads following MLOps best practices.
  • Own ML delivery CI/CD, including pipelines, testing, and release management.
  • Provision and manage Terraform-based infrastructure in development to production.
  • Develop scalable ML platforms for training, inference, and monitoring.
  • Partner with data engineers to optimize feature pipelines and data processing.
  • Design, train, evaluate, and deploy ML models including large language models where appropriate.

Skills

Python
ML frameworks
LangChain / LangGraph
OpenAI SDK
MLOps / CI-CD
Terraform
Azure DevOps / Jenkins
Docker / Kubernetes
Databricks
Azure / cloud platforms

Education

Bachelor’s degree in Computer Science or related field

Tools

Terraform
Azure Key Vault
Databricks
Delta / Unity Catalog
MLflow / Azure ML
Jenkins / GitHub Actions

Job description

Manulife's bold ambition is to become a digital, customer-first leader. To achieve this, we've made significant investments in Advanced Analytics and AI capabilities.

We are seeking an innovative and experienced Machine Learning Engineer to join our AI + Data team, a cross-functional group spanning Operations, Technology, and Marketing.

Our team's mission is to research, build, and deliver production-grade machine learning and Generative AI capabilities that help us better understand our customers, personalize experiences, and drive measurable business impact across insurance, banking, and wealth management globally.

As a Machine Learning Engineer, you will design, build, and operate the platforms, pipelines, and reusable patterns that take models from experimentation to production at scale.

You will work with large-scale, diverse datasets including call center transcripts, insurance claims, digital transactions, and more, building systems that enhance the end-to-end customer experience.

This is a global role with exposure to markets in Canada, the U.S., and Asia, offering the opportunity to collaborate with cross-functional teams and deliver robust, scalable ML systems across multiple business segment.

Position Responsibilities
  • Reusable Patterns and Accelerators: Build reusable patterns for data, ML, and GenAI workloads, following MLOps, LLMOps, and AIOps best practices, and partner with delivery teams on implementation.
  • CI/CD: Own the engineering backbone for ML delivery, including source control workflows, build and deployment pipelines, automated testing, spec-driven development, and release management.
  • Infrastructure as Code: Provision and manage PaaS infrastructure using Terraform, with repeatable, version-controlled environments across development, staging, and production.
  • Credential and Secrets Management: Implement secure credential handling using Azure Key Vault and managed identities, scoping access narrowly across services and pipelines.
  • Scalable Infrastructure: Develop and maintain scalable ML platforms and serving infrastructure that support training, inference, monitoring, and lifecycle management of models in production.
  • Data Pipeline Optimization: Partner with data engineers to build high-quality, well-tested feature and training pipelines that ensure efficient, reliable data processing for ML applications.
  • Model Development and Deployment: Design, train, evaluate, and deploy machine learning models, and integrate large language models where they are the right tool, to solve complex business problems and improve operational efficiency.
  • Model Performance and Reliability: Continuously monitor and improve models and systems for accuracy, latency, cost, drift, and reliability, with clear observability and alerting.
  • Governance and Responsible AI: Ensure interoperability, data consistency, and responsible AI through strong API and data standards, metadata management, security-by-design, privacy controls, and model governance.
  • Integration and Collaboration: Partner with data scientists, engineers, and business stakeholders to gather requirements and integrate ML solutions smoothly with existing systems.
  • Innovation and Research: Stay current with emerging technologies and practices across data engineering, machine learning, and Generative AI, including RAG, vector search, model fine-tuning, and orchestration frameworks.
Required Qualifications
  • Professional Experience: At least 4 years of experience in machine learning engineering, with a proven track record of building and deploying ML models and systems in production.
  • Technical Proficiency: Strong programming skills in Python with hands-on experience in ML frameworks and libraries. Experience with Java or Scala for model serving and JVM-based pipelines is an asset, as is familiarity with GenAI tooling such as LangChain, LangGraph, or the OpenAI SDK.
  • MLOps and CI/CD: Practical experience with model lifecycle tooling (for example MLflow, Azure Machine Learning, or Databricks) and with CI/CD pipelines using tools such as Jenkins, GitHub Actions, or Azure DevOps.
  • Cloud and Infrastructure: Working knowledge of cloud platforms, containerization (Docker, Kubernetes), and infrastructure as code with Terraform.
  • Educational Background: Bachelor’s degree in Computer Science, Engineering, Statistics, or a related field. Equivalent technical experience is also considered.
Preferred Qualifications
  • Machine Learning Expertise: Strong knowledge of machine learning algorithms, with experience adapting pre-trained and foundation models to domain-specific problems.
  • Large-Scale Data Processing: Experience with distributed computing frameworks such as Spark, and with lakehouse architectures on Databricks or equivalent, including Delta and Unity Catalog for data and model governance.
  • Data Engineering Skills: Solid understanding of data engineering principles, including data pipelines and ETL processes.
  • Problem-Solving Ability: Exceptional problem-solving skills with the capacity to tackle complex technical challenges.
  • Effective Communication: Excellent communication skills to effectively collaborate with cross-functional teams and convey technical concepts to non-technical stakeholders.
When you join our team:

We’ll empower you to learn and grow the career you want. We’ll recognize and support you in a flexible environment where well-being and inclusion are more than just words. As part of our global team, we’ll support you in shaping the future you want to see – and discover that better can take you anywhere you want to go. #LI-Hybrid

About Manulife and John Hancock

Manulife Financial Corporation is a leading international financial services provider, helping people make their decisions easier and lives better. To learn more about us, visit https://www.manulife.com/en/about/our-story.html.

Manulife is an Equal Opportunity Employer At Manulife/John Hancock, we embrace our diversity.

We are committed to fair recruitment, retention, advancement and compensation, and we administer all of our practices and programs without discrimination on the basis of race, ancestry, place of origin, colour, ethnic origin, citizenship, religion or religious beliefs, creed, sex (including pregnancy and pregnancy-related conditions), sexual orientation, genetic characteristics, veteran status, gender identity, gender expression, age, marital status, family status, disability, or any other ground protected by applicable law. It is our priority to remove barriers to provide equal access to employment. A Human Resources representative will work with applicants who request a reasonable accommodation during the application process. All information shared during the accommodation request process will be stored and used in a manner that is consistent with applicable laws and Manulife/John Hancock policies. To request a reasonable accommodation in the application process, contact hr@manulife.com.

Compensation and Benefits
  • Referenced Salary Location Toronto, Ontario
  • Working Arrangement Hybrid
  • Salary range is expected to be between $94,430.00 CAD - $144,430.00 CAD
  • Employees also have the opportunity to participate in incentive programs and earn incentive compensation tied to business and individual performance.
  • The actual salary will vary depending on local market conditions, geography and relevant job-related factors such as knowledge, skills, qualifications, experience, and education/training.
  • Manulife offers eligible employees a wide array of customizable benefits, including health, dental, mental health, vision, short- and long-term disability, life and AD&D insurance coverage, adoption/surrogacy and wellness benefits, and employee/family assistance plans.
  • We also offer eligible employees various retirement savings plans (including pension and a global share ownership plan with employer matching contributions) and financial education and counseling resources.
  • Our generous paid time off program in Canada includes holidays, vacation, personal, and sick days, and we offer the full range of statutory leaves of absence.
  • If you are applying for this role in the U.S., please contact hr@manulife.com for more information about U.S.-specific paid time off provisions.

We’re proud of our accomplishments and recognitions. Recent awards include: 2024 Gallup Exceptional Workplace Award Winner Manulife Named one of Forbes World’s Best Employers 2023 Best Companies to Work for in Asia 2023 We’ve been recognized as one of Canada’s Top 100 Employers (2024) Manulife included in Bloomberg’s 2023 Gender-Equality Index To receive our latest job opportunities directly to your inbox, create an account or sign in and navigate to the ‘Job Alerts’ section located in the top right corner of the page. From there, you can sign up to receive job alerts. Our ambition is to be the most digital, customer‑centric global company in our industry. Learn more at https://www.manulife.com/.

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