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Job Description

About the job

The GenAI Engineer / Developer is responsible for designing, building, and deploying enterprisegrade Generative AI applications that accelerate digital transformation across the business. This role focuses on handson engineering of LLMpowered systems, including copilots, RAG solutions, agentic workflows, and AIdriven automations tailored to local business needs.

The position plays a critical role in translating business problems into scalable, secure, and productionready GenAI solutions. Working closely with crossfunctional stakeholders-Sales, HR, Operations, Finance, and IT-the GenAI Engineer rapidly prototypes, iterates, and operationalizes AI solutions that deliver measurable business impact.

A key accountability of the role is ensuring quality, safety, performance, and trust of GenAI systems through robust prompt design, grounding strategies, guardrails, evaluation frameworks, and LLMOps practices. The role also contributes to building sustainable internal AI capability by developing reusable components, reference architecture, documentation, and best practices.

This position is critical for enabling parallel GenAI workstreams, reducing delivery bottlenecks, and establishing longterm, inhouse expertise to support enterprisewide GenAI scaling.

Position Responsibilities:

  • Design, build, and deploy endtoend Generative AI applications, including LLMbased copilots, chatbots, RAG pipelines, multiagent systems, and multimodal workflows.

  • Develop and optimize retrievalaugmented generation (RAG) solutions using vector databases, embeddings, metadata filtering, and grounding techniques to ensure accurate and contextaware outputs.

  • Implement prompt engineering, tool/function calling, and agent orchestration to enable reliable task execution and workflow automation.

  • Integrate GenAI solutions with enterprise systems and data sources via APIs, eventdriven architectures, and secure connectors.

  • Collaborate with product owners and business stakeholders to translate requirements into technical architectures and implementation plans.

  • Establish and follow best practices for LLMOps, including deployment pipelines, monitoring, logging, evaluation, cost optimization, and performance tuning.

  • Implement AI safety, governance, and guardrails, including content filtering, grounding validation, access control, and compliance requirements.

  • Continuously evaluate emerging GenAI models, frameworks, and tooling to improve solution quality, latency, and cost efficiency.

  • Contribute to internal capability building by creating reusable libraries, templates, documentation, and reference implementations.

Required Qualifications

  • 3-5 years of experience in software engineering, AI engineering, ML engineering, or related fields.

  • At least 1 year of handson Generative AI development experience, building and deploying LLMbased applications.

  • Strong proficiency in Python and experience developing APIs and backend services.

  • Practical experience with LLMs, embeddings, vector databases, and RAG architecture.

  • Familiarity with GenAI frameworks such as LangChain, Semantic Kernel, LlamaIndex, or similar.

  • Experience working with cloud AI platforms (Azure, Databricks, NVIDIA, or equivalent).

  • Bache lor's degree in computer science, Computer Engineering, Information Technology, Artificial Intelligence, or related disciplines.

Relevant Certifications (at least one preferred):

  • Databricks Certified Generative Engineering Associate

  • Databricks Certified ML Associate / Professional

  • Microsoft Generative AI Engineering Professional Certificate

  • Microsoft Certified: Azure AI Engineer Associate

  • NVIDIA Generative AI / LLMs Certified Associate

  • IBM Generative AI Engineering Professional Certificate

Preferred Qualifications

  • Master's degree or PhD in Computer Science, AI, Electrical Engineering, Physics, or related fields.

  • 4+ years of experience in AI, ML, or software engineering roles.

  • Proven experience delivering productiongrade GenAI solutions in enterprise environments.

  • Experience with LLMOps, MLOps, CI/CD, and cloudnative architectures.

  • Databricks Certified Generative Engineering Associate or Microsoft Generative AI Engineering Professional Certificate.

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.

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 .

Manulife is an Equal Opportunity Employer

At Manulife/John Hancock, we embrace our diversity. We strive to attract, develop and retain a workforce that is as diverse as the customers we serve and to foster an inclusive work environment that embraces the strength of cultures and individuals. 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 .

Working Arrangement

Hybrid

More Info

Job ID: 145001699

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