Senior Staff Engineer (Generative AI, Langchain + Langraph, Machine Learning)

Posted 5 Days Ago
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Bengaluru, Karnataka, IND
In-Office
Senior level
Artificial Intelligence • Information Technology • Machine Learning • Software • Virtual Reality • Analytics
The Role
Design, develop, and deploy enterprise-grade Generative AI, Agentic AI, and machine learning solutions. Build RAG architectures, intelligent and multi-agent systems, prompt strategies, memory frameworks, MCP integrations, and evaluation pipelines using LangChain, LangGraph, and LangSmith. Apply classical ML techniques, support MLOps initiatives, and establish monitoring, observability, testing, and quality practices while collaborating with engineering and cross-functional teams to deliver scalable, secure, and reliable AI applications.
Summary Generated by Built In
Company Description

👋🏼We're Nagarro.

We are a Digital Product Engineering company that is scaling in a big way! We build products, services, and experiences that inspire, excite, and delight. We work at a scale — across all devices and digital mediums, and our people exist everywhere in the world (18000+ experts across 36 countries, to be exact). Our work culture is dynamic and non-hierarchical. We are looking for great new colleagues. That is where you come in!

Job Description

Requirements

  • 7.5 to 12 years of overall experience in Data Science, Machine Learning, and Artificial Intelligence.
  • Strong hands-on experience with Generative AI fundamentals, Large Language Models (LLMs), and Agentic AI systems.
  • Proven expertise in developing GenAI applications using LangChain, LangGraph, and associated ecosystem tools.
  • Experience designing and implementing Retrieval Augmented Generation (RAG) solutions, including retrieval, reranking, chunking, memory management, and context optimization.
  • Strong understanding of prompt engineering techniques, including instruction tuning, ReAct frameworks, reasoning strategies, planning loops, and self-reflection mechanisms.
  • Hands-on experience with LLM evaluation frameworks, model assessment, and GenAI quality measurement methodologies.
  • Experience using LangSmith for tracing, monitoring, debugging, evaluation, regression testing, and performance optimization of GenAI applications.
  • Strong knowledge of Vector Databases and Embeddings, including FAISS, Azure AI Search, OpenSearch, PGVector, or similar technologies.
  • Experience building intelligent agents, tool-calling agents, planner-executor frameworks, multi-agent systems, and hierarchical agent architectures.
  • Good understanding of memory architectures, including episodic memory, semantic memory, and long-term vector-based memory systems.
  • Experience integrating AI agents with APIs, enterprise applications, knowledge repositories, and external tools.
  • Strong foundation in classical Machine Learning concepts, including feature engineering, model development, hyperparameter tuning, and model evaluation.
  • Experience working with structured and unstructured datasets for predictive and analytical use cases.
  • Understanding of MLOps concepts, including model monitoring, data drift detection, concept drift analysis, and model quality management.
  • Hands-on experience with cloud platforms such as AWS, Azure, or Databricks.
  • Proficiency with version control systems and collaborative development tools such as Git and GitHub.
  • Strong problem-solving, analytical, communication, and stakeholder management skills.
  • Candidate should have an official notice period of 30 days or less and must be able to join within one month.

 

Responsibilities

  • Design, develop, and deploy enterprise-grade Generative AI and Agentic AI solutions using modern LLM frameworks and tools.
  • Build scalable GenAI applications leveraging LangChain, LangGraph, and related ecosystem technologies.
  • Design and implement advanced RAG architectures to improve response quality, grounding, and knowledge retrieval accuracy.
  • Develop and optimize prompt engineering strategies to enhance reasoning, planning, tool usage, and response generation capabilities.
  • Build intelligent agents capable of tool calling, workflow orchestration, task planning, and autonomous decision-making.
  • Develop multi-agent systems and agent collaboration frameworks for complex business workflows.
  • Implement memory-driven agent architectures supporting contextual awareness and long-term knowledge retention.
  • Create evaluation frameworks to measure performance, reliability, robustness, and business effectiveness of AI solutions.
  • Establish monitoring, tracing, testing, and observability frameworks using LangSmith and related tools.
  • Build and integrate Model Context Protocol (MCP) based services and external tool integrations.
  • Enable AI systems to interact with APIs, applications, code execution environments, and enterprise knowledge sources.
  • Apply Machine Learning techniques to solve business problems involving structured and unstructured data.
  • Perform model development, feature engineering, model optimization, validation, and performance analysis.
  • Collaborate closely with engineering, architecture, and cross-functional teams to productionize AI and ML solutions.
  • Ensure scalability, security, maintainability, and reliability of AI-powered applications.
  • Support MLOps initiatives, including model monitoring, drift detection, performance tracking, and continuous improvement.
  • Maintain comprehensive technical documentation, coding standards, and quality assurance practices throughout the development lifecycle.
  • Stay current with emerging trends, frameworks, tools, and best practices in Generative AI, Agentic AI, Machine Learning, and AI Engineering.

Qualifications

Bachelor’s or master’s degree in computer science, Information Technology, or a related field.

Skills Required

  • 7.5 to 12 years of experience in Data Science, Machine Learning, and Artificial Intelligence
  • Hands-on experience with Generative AI fundamentals, LLMs, and Agentic AI systems
  • Expertise developing GenAI applications with LangChain and LangGraph
  • Experience designing and implementing RAG solutions, including retrieval, reranking, chunking, memory management, and context optimization
  • Knowledge of prompt engineering, instruction tuning, ReAct frameworks, reasoning strategies, planning loops, and self-reflection mechanisms
  • Experience with LLM evaluation frameworks and GenAI quality measurement
  • Experience using LangSmith for tracing, monitoring, debugging, evaluation, regression testing, and optimization
  • Knowledge of vector databases and embeddings, such as FAISS, Azure AI Search, OpenSearch, or PGVector
  • Experience building intelligent agents, tool-calling agents, planner-executor frameworks, multi-agent systems, and hierarchical agent architectures
  • Understanding of episodic, semantic, and long-term vector-based memory architectures
  • Experience integrating AI agents with APIs, enterprise applications, knowledge repositories, and external tools
  • Foundation in classical machine learning, including feature engineering, model development, hyperparameter tuning, and model evaluation
  • Experience with structured and unstructured datasets
  • Understanding of MLOps, model monitoring, data drift, concept drift, and model quality management
  • Hands-on experience with AWS, Azure, or Databricks
  • Proficiency with Git and GitHub
  • Strong problem-solving, analytical, communication, and stakeholder management skills
  • Official notice period of 30 days or less and ability to join within one month
  • Bachelor's or master's degree in computer science, information technology, or a related field

Nagarro Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Nagarro and has not been reviewed or approved by Nagarro.

  • Pay Growth & Progression Compensation is at times described as competitive, with salary hikes and perks occurring on certain occasions. Better growth opportunities and compensation are also positioned as an advantage versus other service-based companies.
  • Flexible Benefits Work arrangements are framed around a “work-from-anywhere” mindset with flexitime and family-friendly working models. This flexibility appears to add meaningful value to the overall rewards package for many roles.
  • Healthcare Strength Medical, dental, and vision coverage are described as available for employees and dependents, alongside life insurance. Mental-health support is also included via an Employee Assistance Program (EAP).

Nagarro Insights

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The Company
HQ: Munich
19,994 Employees
Year Founded: 1996

What We Do

Nagarro helps future-proof your business through a forward-thinking, fluidic, and CARING mindset. We excel at digital engineering and help our clients become human-centric, digital-first organizations, augmenting their ability to be responsive, efficient, intimate, creative, and sustainable. Today, we are 19,000 experts across 36 countries, forming a Nation of Nagarrians, ready to help our customers succeed.

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