Senior AI/ML Engineer - R01572335

Brillio

Bengaluru

On-site

INR 1,800,000 - 2,800,000

Full time

27 hours ago
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Job summary

Brillio Bengaluru seeks an experienced AI engineer to design and build end-to-end AI agent workflows, focusing on LLM-based apps and RAG pipelines. You will implement chunking, embeddings, retrieval strategies, and context windows for precise responses.

You will iterate on prompts and chain-of-thought strategies, enabling reliable outputs across diverse inputs while integrating tools, databases, and validation layers for scalable operation.

Qualifications

  • 2-4 years of experience, with at least 2 years in developing LLM-based apps, RAG systems, or AI agent workflows
  • Strong Python skills and hands-on experience with LangChain or LlamaIndex
  • Experience designing, testing, and iterating prompts for reliable outputs
  • Deep understanding of RAG architectures including embeddings, vector stores, and retrieval strategies
  • Experience building multi-step agent workflows with tool use and branching logic
  • Experience deploying and maintaining AI/ML solutions in production environments
  • Experience with data pipelines feeding AI systems

Responsibilities

  • Design end-to-end AI agent workflows from prompt design to production deployment
  • Build and optimize RAG pipelines with chunking, embeddings, retrieval ranking and context management
  • Iterate on prompt layers and chain-of-thought strategies for consistent outputs
  • Implement tool orchestration within agent workflows across databases, rule engines and formatting tools
  • Establish automated quality checks and validation layers before outputs reach humans
  • Collaborate with data scientists to instrument solutions and track performance
  • Deploy, monitor and maintain AI/ML solutions in production with reliability and error handling
  • Design feedback loops to capture expert review data and translate into improvements

Skills

Python
LangChain
LlamaIndex
Prompt engineering
RAG architectures
Agent workflows
Production AI/ML
Data pipelines

Education

Bachelor's degree in Computer Science/IT/Data Science
ML/AI certification
LLM engineering certification

Job description

Experience Range: 2 to 4 years of experience, including at least 2 years specifically focused on developing LLM-based applications, RAG systems, or AI agent workflows

Key Responsibilities
  • Design and build end-to-end AI agent workflows, from initial prompt design through production deployment, ensuring scalable and reliable solutions
  • Develop and optimize Retrieval-Augmented Generation (RAG) pipelines by implementing chunking strategies, embedding models, retrieval ranking, and context window management for precise information retrieval
  • Build and iterate on prompt engineering layers, systematically testing and refining prompts and chain-of-thought strategies to deliver consistent outputs across diverse inputs
  • Implement tool orchestration within agent workflows, integrating agents with databases, rule engines, validation systems, and formatting tools for seamless operation
  • Establish automated quality checks and validation layers to proactively identify and resolve issues before outputs reach human reviewers
  • Collaborate with Data Scientists to instrument solutions for measurement, developing evaluation frameworks and tracking solution performance against defined targets
  • Deploy, monitor, and maintain AI/ML solutions in production environments, ensuring reliability, scalability, and robust error handling
  • Design and implement feedback loops to capture expert review data and translate it into measurable improvements in agent performance
Required Skills
  • Advanced proficiency in Python
  • Hands-on experience with LLM frameworks such as LangChain or LlamaIndex
  • Expertise in prompt engineering for systematic testing and iteration
  • Deep understanding of RAG architectures including embedding models, vector stores, retrieval strategies, and re-ranking
  • Experience building multi-step agent workflows with tool use and branching logic
  • Experience deploying and maintaining AI/ML solutions in production environments
  • Experience with data pipeline development for feeding AI systems
Preferred Skills
  • Experience with multi-agent orchestration frameworks
  • Background in content generation, translation, or document processing solutions
  • Familiarity with feedback loops, RLHF, or reward model training
  • Knowledge of multi-modal AI systems including voice-to-text, document understanding, and image analysis
  • Experience with evaluation frameworks for generative AI and automated scoring
  • Experience with LLM cost optimization strategies such as model routing, caching, and prompt compression
Desired Qualifications
  • Bachelor’s degree in Computer Science, Data Science, Information Technology, Statistics, or a closely related discipline
  • Certification in Machine Learning or Artificial Intelligence (e.g., TensorFlow Developer Certificate, AWS Certified Machine Learning – Specialty)
  • Certification in LLM engineering or generative AI (e.g., DeepLearning.AI Generative AI with LLMs)
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