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Recro · Bengaluru, Karnataka, India

AI/ML Engineer

mid_levelfull timePosted 4 days ago
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artificial-intelligencegenerative-aillmdata-analysisragvector-databasespineconelangchainllamaindexprompt-engineeringpythonpytorchhugging-facetransformersnlpfine-tuningopenai

We’re Hiring: AI/ML Engineer (GenAI & LLM Focus)

A leading global telecom analytics company is seeking a highly skilled AI/ML Engineer (GenAI/LLM) to design, fine-tune, and operationalize Large Language Models (LLMs) for complex telecom business applications. In this role, you will build domain-specific GenAI solutions, transforming telecom operational processes, customer interactions, and internal decision-making workflows.

📍 Role Overview

- Role: AI/ML Engineer – Engineering

- Industry: Telecommunications & Data Analytics

- Experience: 4+ years in AI/ML (with 2+ years in LLMs or GenAI deployments)

- Education: B.E. / B.Tech, M.E. / M.Tech, or M.Sc. in Computer Science or a related field

- Location: Bangalore.

🎯 Key Responsibilities

- Domain-Specific LLMs: Curate domain-relevant datasets to train and fine-tune LLMs (e.g., GPT, Llama, Mistral) tailored to telecom use cases.

- RAG & Agent Workflows: Develop Retrieval-Augmented Generation (RAG) pipelines integrated with vector databases (FAISS, Pinecone). Build multi-agent LLM pipelines using orchestration tools like LangChain and LlamaIndex.

- Prompt Engineering: Design prompt engineering frameworks and optimize context strategies for complex telco-specific queries.

- Cross-Functional Collaboration: Partner with data engineers, product teams, and domain experts to translate telecom business logic into active GenAI workflows.

- Model Evaluation & Quality: Conduct systematic model evaluations to minimize hallucinations, enhance domain-specific accuracy, and track business KPIs.

- Best Practices: Build reusable internal GenAI modules, maintain coding standards, and document best practices.

🛠️ Technical Qualifications & Skills

- Core Tech Stack: Proficiency in Python, PyTorch, Hugging Face Transformers, and NLP libraries.

- LLM Architecture & Fine-Tuning: Deep understanding of transformer architectures and fine-tuning techniques (LoRA, PEFT, adapters).

- Frameworks & Tools: Hands-on expertise with prompt engineering, RAG architecture, and orchestration frameworks (LangChain, LlamaIndex).

- Bonus Exposure: Experience with multi-modal LLMs (text + tabular/time-series), OpenAI function calling, LangGraph, low-latency inference optimization (quantization, distillation), and telecom datasets (call records, network logs, customer tickets).

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