Lead design, build, deployment and support of AI assistants, agentic workflows, and automation. Architect Python microservices, LLM/RAG and vector-search solutions, ensure security, observability, and production reliability, and collaborate across product and engineering teams to operationalize GenAI solutions.
Job Purpose and Impact
Key Accountabilities
Qualifications
- The Senior Software Engineer will lead the design, architecture, build, deployment, and ongoing support of complex AI Assistants, AI Agents, and automation solutions-leveraging ChatGPT-based copilots, Copilot Studio agents, and Power Automate workflows-while adhering to Food APAC AI CoE platform standards and guardrails. Deliverables typically span APIs and integration services, retrieval and vector-search pipelines, enterprise-scale LLMOps/AgentOps operational tooling, and intuitive front-end experiences for office users and plant operators.
This role will work primarily within the Food APAC Digital Technology and Data team, owning and shaping solutions across the Food APAC technology stack that serve internal teams and customers. The Senior Software Engineer will act as a technical leader and trusted partner to the business Product Owner, translating complex product requirements into secure, scalable, observable, and cost-efficient services or agents; managing the lifecycle from experiment to production; and proactively improving reliability, latency, performance, and cost.
- The Senior Software Engineer will lead the design, architecture, build, deployment, and ongoing support of complex AI Assistants, AI Agents, and automation solutions-leveraging ChatGPT-based copilots, Copilot Studio agents, and Power Automate workflows-while adhering to Food APAC AI CoE platform standards and guardrails. Deliverables typically span APIs and integration services, retrieval and vector-search pipelines, enterprise-scale LLMOps/AgentOps operational tooling, and intuitive front-end experiences for office users and plant operators.
Key Accountabilities
- Lead development of Agentic AI workflows, AI assistants, and multi-agent automation solutions.
- Design scalable Python microservices, APIs, LLM, RAG, and vector search architectures.
- Implement prompt engineering, response grounding, caching, and performance optimization strategies.
- Drive testing, debugging, security, reliability, and production support for AI applications.
- Own monitoring, observability, incident management, and operational excellence practices.
- Collaborate with cross-functional teams to deliver business-focused AI solutions.
- Ensure adherence to enterprise architecture, governance, cybersecurity, and Responsible AI standards.
- Strong expertise in Python, cloud-native technologies, APIs, CI/CD, containerization, LLM/RAG frameworks, vector databases, and AI platforms such as Copilot Studio, ChatGPT, Power Automate, Salesforce, and Service Cloud.
Qualifications
- Minimum requirement of 4 years of relevant work experience. Typically reflects 5 years or more of relevant experience.• Typically reflects 4 years or more of relevant experience, including 3+ years working with cloud-native AI/ML or GenAI systems on Azure, AWS, or GCP, or 2+ years of software development experience.
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What you need to know about the Chennai Tech Scene
To locals, it's no secret that South India is leading the charge in big data infrastructure. While the environmental impact of data centers has long been a concern, emerging hubs like Chennai are favored by companies seeking ready access to renewable energy resources, which provide more sustainable and cost-effective solutions. As a result, Chennai, along with neighboring Bengaluru and Hyderabad, is poised for significant growth, with a projected 65 percent increase in data center capacity over the next decade.
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