Lead AI Engineer

Posted 5 Days Ago
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Kakkanad, Ernakulam, Kerala, IND
In-Office
Senior level
Artificial Intelligence • Information Technology • Software • Database • Analytics
The Role
Lead design, architecture, and delivery of production-grade generative AI systems (RAG, agents, vector search, LLM-backed APIs). Drive end-to-end initiatives, establish LLMOps and AI safety, deploy cloud-native AI services, mentor engineers, and produce technical documentation and runbooks for scalable, secure, production-ready AI solutions.
Summary Generated by Built In

Role Purpose:

 

As a Lead AI Engineer at Prevalent AI, you will lead the design, architecture, and delivery of production-grade Generative AI solutions across our Exposure Management and Data Fabric platforms. You will provide technical leadership for AI initiatives, drive architectural decisions, establish engineering best practices, and remain hands-on in building complex AI systems. 

You will own the end-to-end lifecycle of AI capabilities including Retrieval-Augmented Generation (RAG), multi-agent systems, LLM-backed APIs, AI safety frameworks, evaluation pipelines, LLMOps, and cloud-native AI services, ensuring they are scalable, secure, observable, and production-ready. 

This role is suited for engineers who have successfully delivered complex AI solutions in production, can independently drive technical initiatives from concept to deployment, and provide technical leadership across multiple AI projects. 

Key Accountabilities:

 

  • Lead the architecture, design, and delivery of complex production-grade AI solutions including RAG pipelines, AI agents, vector search, LLM-powered services, and agentic AI workflows.  
  • Independently drive AI initiatives from technical discovery through production deployment, making architectural decisions and ensuring successful delivery.  
  • Build scalable AI applications using FastAPILangChainLangGraph, MCP, vector databases, cloud AI services, and modern AI engineering practices.  
  • Design robust prompting, retrieval, fine-tuning, evaluation, and AI safety strategies to improve accuracy, reliability, latency, and cost.  
  • Establish LLMOps practices including prompt lifecycle management, experiment tracking, model versioning, AI evaluation, production monitoring, and governance.  
  • Build and deploy AI services using CI/CD pipelines, Docker, Kubernetes, cloud platforms, and where appropriate, self-hosted/open-source LLMs.  
  • Collaborate closely with Product, Platform Engineering, Data Engineering, Backend Engineering, and client-facing teams to translate business requirements into scalable AI solutions.  
  • Provide technical leadership through architecture reviews, mentoring, engineering best practices, and technical guidance across AI initiatives.  
  • Produce high-quality technical documentation covering solution architecture, AI workflows, evaluation approaches, API contracts, deployment processes, and operational runbooks. 

 

Skills & Experience:

 

Must Have 

  • Demonstrated experience leading the design and successful delivery of complex production-grade Generative AI solutions with end-to-end ownership.  
  • Proven ability to independently drive technical decisions, lead AI initiatives, and deliver scalable AI solutions across cross-functional teams.  
  • Strong hands-on experience with LangChainLangGraph, RAG, AI agents, vector databases, FastAPI, Python, and modern LLM application development.  
  • Experience building AI applications using Azure OpenAI, AWS Bedrock, Google Vertex AI/Gemini, or equivalent cloud AI platforms.  
  • Experience implementing prompt engineering, fine-tuning (LoRA/QLoRA/PEFT), AI guardrails, hallucination mitigation, and structured AI workflows.  
  • Experience with LLMOps practices including prompt lifecycle management, model versioning, AI evaluation (RAGAS, DeepEvalLangSmith or equivalent), production monitoring, and CI/CD.  
  • Experience deploying AI workloads using Docker, Kubernetes, and modern cloud-native engineering practices.  
  • Demonstrated experience of mentoring engineers, conducting architecture reviews, and providing technical leadership on enterprise AI projects.  

 

Good to Have 

  • Experience with FastMCP or advanced MCP ecosystems.  
  • Experience deploying self-hosted/open-source LLMs (Llama, Mistral, Qwen, Phi, etc.) on GPU infrastructure or on-premise environments.  
  • Experience implementing AI observability using LangFuseLangSmithOpenTelemetry, Grafana, or equivalent tools.  
  • Exposure to cybersecurity, security analytics, or enterprise AI platforms. 

Skills Required

  • Proven experience leading design and delivery of production-grade Generative AI solutions with end-to-end ownership.
  • Ability to independently drive technical decisions and lead AI initiatives across cross-functional teams.
  • Hands-on experience with LangChain, LangGraph, RAG, AI agents, vector databases, FastAPI, and Python for LLM application development.
  • Experience building AI applications using Azure OpenAI, AWS Bedrock, or Google Vertex AI/Gemini.
  • Experience with prompt engineering and fine-tuning techniques (LoRA, QLoRA, PEFT), hallucination mitigation, and AI guardrails.
  • Experience with LLMOps practices: prompt lifecycle management, model versioning, AI evaluation (RAGAS, DeepEval, LangSmith), monitoring, and CI/CD.
  • Experience deploying AI workloads using Docker, Kubernetes, and cloud-native engineering practices.
  • Demonstrated experience mentoring engineers, conducting architecture reviews, and providing technical leadership on enterprise AI projects.
  • Experience with FastMCP or advanced MCP ecosystems.
  • Experience deploying self-hosted/open-source LLMs (Llama, Mistral, Qwen, Phi) on GPU or on-premise infrastructure.
  • Experience implementing AI observability using LangFuse, LangSmith, OpenTelemetry, or Grafana.
  • Exposure to cybersecurity, security analytics, or enterprise AI platforms.
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The Company
HQ: London
157 Employees
Year Founded: 2017

What We Do

Prevalent AI was founded to assemble the world’s best AI and Data Science talent, a team capable of building the security analytics of the future. In a security technology landscape filled with rigid, siloed solutions and disparate data, organizations are unable to tackle threats and vulnerabilities effectively. By combining our Security Data Fabric with AI-powered Exposure Management, we provide our clients with complete clarity of their cyber risk. Our Security Data Fabric automates the integration of complex and disparate data into a single unified knowledge graph, turning data chaos into data clarity with AI-powered entity resolution. Our Exposure Management platform identifies every attack surface, contextualizes and prioritizes risk findings, and rapidly remediates exposures — so you’ll always stay one step ahead of attackers.

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