Senior Artificial Intelligence Engineer

Blend

Hyderabad

On-site

INR 3,500,000 - 6,000,000

Full time

8 days ago

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Job summary

Blend is seeking Senior AI Engineers to design and deploy scalable AI solutions in a cross-functional team. You will work on Retrieval-Augmented Generation (RAG), agentic frameworks, and end-to-end MLOps using LangChain, CrewAI, and Google ADK.

You will implement prompt engineering, monitor performance, and collaborate to align AI systems with broader development goals while delivering scalable AI-powered services.

Qualifications

  • 4+ years of AI/ML production experience.
  • Cloud platforms experience (Azure/AWS/GCP).
  • Proficiency in Python and ML libraries (PyTorch/TF/Scikit-learn).
  • Experience with RAG, prompts, and LLM-based app development.
  • MLOps pipelines, observability, and CI/CD tooling.

Responsibilities

  • Design, develop, and deploy AI solutions.
  • Implement RAG and fine-tuning techniques.
  • Utilize and integrate LangChain and related tools.
  • Apply prompt engineering for complex LLM tasks.
  • Build agentic frameworks like CrewAI and Google ADK.
  • Apply MLOps best practices and CI/CD pipelines.
  • Monitor and trace AI performance and reliability.
  • Collaborate across teams to align AI with broader goals.

Skills

AI/ML in production
Cloud platforms
Python & ML libs
RAG & LLM apps
MLOps pipelines
API backend services
Problem solving

Tools

Azure DevOps
Jenkins
GitHub Actions
GitLab CI/CD
MLflow

Job description

We are looking for Senior AI Engineers with hands-on experience designing and deploying scalable AI solutions. In this role, you will be part of a cross-functional team working on cutting-edge projects involving Retrieval-Augmented Generation (RAG), agentic frameworks, and end-to-end MLOps workflows.

You'll play a key role in developing AI applications using tools like LangChain, CrewAI, and Google ADK, while applying advanced prompt engineering techniques and ensuring robust monitoring and performance tracing. Your collaboration with other engineering will help align innovative AI systems with broader development goals.

What is this position about?
  • Design, develop, and deploy AI solutions.
  • Implement Retrieval-Augmented Generation (RAG) and fine-tuning techniques.
  • Utilize and integrate AI frameworks like LangChain.
  • Use advanced prompt engineering techniques to solve complex problems with LLMs.
  • Build and manage agentic frameworks such as CrewAI and Google ADK.
  • Apply MLOps best practices to streamline AI development workflows.
  • Monitor and trace AI applications performance.
  • Collaborate across teams to ensure alignment with traditional ML and AI methodologies.
  • Work on end-to-end software engineering for scalable solutions.
Qualifications
  • 4+ years of experience in building and deploying AI/ML or GenAI solutions in production environments.
  • Strong experience with at least one major cloud platform (Azure, AWS, or GCP) for building and deploying AI/ML solutions.
  • Experience with services such as Azure ML, AWS Bedrock/SageMaker, GCP Vertex AI, Databricks, or equivalent AI/ML platforms is preferred.
  • Proficiency in Python and major ML frameworks (PyTorch, TensorFlow, Scikit-learn).
  • Hands-on experience with RAG architecture, prompt engineering, and LLM-based application development.
  • Experience with MLOps/LLMOps pipelines, model tracking, observability, and CI/CD using tools such as Azure DevOps, Jenkins, GitHub Actions, GitLab CI/CD, MLflow, or equivalent platforms.
  • Familiarity with enterprise data integration and orchestration tools such as Azure Data Factory, Synapse, Databricks, Airflow, Kafka, or equivalent distributed data platforms.
  • Strong backend engineering and API development experience using FastAPI, Flask, Node.js, or similar frameworks, with ability to build scalable AI-powered services and microservices.
  • Excellent problem-solving, debugging, and collaboration skills.
Good to Have
  • Experience building production-grade RAG systems using vector databases such as Pinecone, FAISS, ChromaDB, pgvector, Milvus, or Azure AI Search.
  • Experience with agentic AI frameworks such as LangGraph, CrewAI, AutoGen, MCP, or Google ADK.
  • Familiarity with AI observability and evaluation tools such as LangSmith, Langfuse, RAGAS, MLflow, App Insights, or Prometheus/Grafana.
  • Experience deploying AI systems using Docker, Kubernetes, serverless architectures, or container orchestration platforms.
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