About The Position

This Senior Consultant II is a hands on, forward engineering role in the field of machine learning, information retrieval, artificial intelligence, natural language processing, and ontology engineering technologies. Contributes to the realization of cutting-edge technical capabilities into business applications by applying advanced algorithms and techniques to software solutions. About the Role We are looking for a Generative AI Software Engineer to join our team and help build next-generation AI-driven solutions. This role blends traditional Software engineering with cutting-edge AI integration, enabling innovative digital products and services. You will work closely with cross-functional teams to design, develop, and deploy secure, scalable applications and integrate advanced AI models into production environments.

Requirements

  • 3+ years of backend development experience using Java Spring Boot / Python.
  • Strong understanding of RESTful APIs, microservices architecture, and asynchronous processing.
  • Experience working with Generative AI APIs and/or open-source models.
  • Knowledge of LangChain, LLM orchestration, and prompt engineering.

Nice To Haves

  • Exposure to multi-modal AI systems and agentic AI frameworks.
  • Experience with MLOps workflows and cloud deployment (Azure/AI Foundry preferred).
  • Strong problem-solving and debugging skills.

Responsibilities

  • Sofware Engineering Build secure, scalable, and high-performance microservices and applications using Java Spring Boot / Python.
  • Design and maintain RESTful APIs and microservices architecture with asynchronous processing.
  • Deploy and manage applications on cloud platforms, preferably Microsoft Azure.
  • AI Integration & Development Integrate and deploy Generative AI models (e.g., OpenAI, Hugging Face, LangChain) into production environments.
  • Optimize LLMs for specific use cases and implement RAG (Retrieval-Augmented Generation) pipelines.
  • Work with embedding models, vector databases, and prompt engineering techniques.
  • Explore multi-modal AI systems and agentic AI frameworks for advanced capabilities.
  • Modern Development Practices Leverage tools like GitHub Copilot and agentic AI for code reviews, unit testing, and pull requests.
  • Leverage APM tools like DataDog to enhance Observability posture for your application.
  • Collaborate with platform consultants, product engineers, and digital product managers to integrate AI solutions.
  • MLOps & Model Deployment Implement best practices for model deployment, scaling, versioning, and monitoring.
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