Key Responsibilities :
Design, develop, and deploy conversational AI systems (chatbots, virtual assistants) that leverage LLMs to enable seamless voice interactions for banking services & Code generation and Completion including test cases.
Develop multi modal solution architecture with Agents with bespoke models for specific use-case / scenario
Fine-tune and optimize LLM models for specific banking tasks and user experiences.
Implement Retrieval Augmented Generation (RAG), and embeddings to retrieve customer information through APIs
Continuously monitor and evaluate the performance of voice-based banking solutions.
Develop and deploy machine learning models for tasks like personalized recommendations, and customer sentiment analysis.
Collaborate to deploy and manage models on GCP, leveraging its MLOps tools and services to streamline model development, training, and deployment.
Develop an end-to-end architecture from training to inferencing custom models
Skills :
Strong understanding of natural language processing (NLP) concepts and techniques, good programming skills
Knowledge on AI / ML algorithms building NLP Applications
Deep knowledge of LLM architectures and their applications.
Expertise in data preprocessing, feature engineering, and model evaluation.
Basic understanding of MLOps principles and practices.
Excellent problem-solving and communication skills.
Experience
3+ years of hands-on experience in AI / ML development, with a strong focus on NLP & API Integrations
Experience with LLM models, and fine-tuning, prompt engineering, and RAG techniques.
Proficiency in Python is Must
Knowledge on vector databases will be good
HandOn experience with frameworks TensorFlow, Pytorch, LangChain, FastAPIs, NoSQL Database
Knowledge on GCP / MLOPs will
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Skills Required
Ai Development, Python, Llm
Engineer • Chennai