Staff ML Engineer

Posted Yesterday
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Bengaluru, Bengaluru Urban, Karnataka, IND
In-Office
6M-10M Annually
Expert/Leader
Artificial Intelligence • HR Tech • Professional Services • Software
The Role
Designs, builds, and scales production-grade generative AI applications, including assistants, copilots, document intelligence, and workflow automation. Leads architecture, model selection, RAG, agentic workflows, evaluation, observability, security, reliability, cost optimization, and deployment. Partners with stakeholders to define business impact and improve production systems. Provides technical leadership, establishes engineering standards, evaluates emerging AI techniques, and mentors engineers.
Summary Generated by Built In

𝗧𝗵𝗶𝘀 𝗿𝗼𝗹𝗲 𝗶𝘀 𝗳𝗼𝗿 𝗼𝗻𝗲 𝗼𝗳 𝘁𝗵𝗲 𝗪𝗲𝗲𝗸𝗱𝗮𝘆'𝘀 𝗰𝗹𝗶𝗲𝗻𝘁𝘀

𝗦𝗮𝗹𝗮𝗿𝘆 𝗿𝗮𝗻𝗴𝗲: 𝗥𝘀 𝟲𝟬𝟬𝟬𝟬𝟬𝟬 - 𝗥𝘀 𝟭𝟬𝟬𝟬𝟬𝟬𝟬𝟬 (𝗶𝗲 𝗜𝗡𝗥 𝟲𝟬-𝟭𝟬𝟬 𝗟𝗣𝗔)

Experience: 13+ yrs

Location: Bengaluru

Job Type: Full-time

We are looking for an experienced Staff ML Engineer – Generative AI to design, build, and scale production-grade GenAI applications and intelligent software systems. The role combines hands-on engineering, AI architecture, technical leadership, and end-to-end ownership of enterprise AI solutions.

The ideal candidate will have strong experience taking GenAI applications beyond prototypes into production, with a focus on reliability, evaluation, observability, security, cost optimisation, user trust, adoption, and measurable business impact.


Requirements

Key Responsibilities

  • Design, develop, and launch production-grade GenAI applications including assistants, copilots, document intelligence, workflow automation, and decision-support solutions.
  • Identify high-impact opportunities where AI can improve productivity, service quality, operational efficiency, customer experience, or business outcomes.
  • Take GenAI applications from concept and experimentation through production deployment and ongoing optimisation.
  • Lead hands-on technical execution across application architecture, model selection, prompting, retrieval, orchestration, APIs, data pipelines, and user experiences.
  • Architect scalable LLM applications using RAG, agentic workflows, tool use, structured outputs, grounding, and orchestration.
  • Evaluate and select appropriate frontier models, open-source models, smaller task-specific models, fine-tuned models, or deterministic approaches based on business requirements.
  • Establish practical evaluation frameworks covering accuracy, relevance, groundedness, safety, latency, cost, user trust, adoption, and business impact.
  • Build production capabilities for observability, monitoring, versioning, fallback mechanisms, privacy, security, reliability, and operational ownership.
  • Analyse production feedback and continuously improve AI application quality, performance, reliability, and user experience.
  • Work with cross-functional stakeholders to define requirements, establish success criteria, and measure real-world impact.
  • Stay current with emerging GenAI technologies and pragmatically evaluate techniques that improve quality, speed, scalability, or cost efficiency.
  • Contribute to engineering standards, technical architecture decisions, AI development practices, and responsible AI implementation.
  • Mentor engineers and provide technical leadership across complex AI application initiatives.

What Makes You a Great Fit

  • 13+ years of experience building applied AI/ML-based intelligent software systems, with strong hands-on engineering expertise.
  • 3+ years of practical GenAI application experience, including production applications used by real users at meaningful scale.
  • Proven experience taking GenAI solutions from PoC/prototype to production, with ownership of reliability, launch quality, cost, user feedback, adoption, and measurable impact.
  • Strong understanding of modern LLM application architectures including RAG, agents, tool use, structured outputs, retrieval, grounding, and orchestration.
  • Experience with LangGraph, LangChain, LlamaIndex, and LLM APIs such as GPT, Claude, or Gemini.
  • Strong programming and software engineering capabilities, with the ability to build production-ready AI applications rather than only prototypes.
  • Experience implementing evaluation and observability frameworks using tools such as Langfuse, Arize, or similar platforms.
  • Strong understanding of enterprise AI requirements including security, privacy, reliability, monitoring, cost management, and user trust.
  • Experience with AI-native development tools such as Cursor, Claude Code, or similar tools is preferred.
  • Strong architectural judgement with the ability to balance model capabilities, application complexity, performance, cost, and reliability.
  • Experience with advanced AI techniques such as GraphRAG, long-context architectures, model routing, caching, cascades, PEFT/LoRA/QLoRA, knowledge distillation, or open-source model deployment is an advantage.
  • Strong analytical, problem-solving, communication, and cross-functional collaboration skills.
  • Ability to operate effectively in ambiguous, fast-moving environments and take end-to-end ownership of complex technical initiatives.
  • Strong interest in building trustworthy, scalable, measurable, and production-ready AI systems.

Skills Required

  • 13+ years of experience building applied AI/ML-based intelligent software systems
  • 3+ years of practical Generative AI application experience in production
  • Experience taking GenAI solutions from prototype or proof of concept to production
  • Experience with RAG, agents, tool use, structured outputs, retrieval, grounding, and orchestration
  • Experience with LangGraph, LangChain, LlamaIndex, and LLM APIs such as GPT, Claude, or Gemini
  • Strong programming and production software engineering capabilities
  • Experience implementing AI evaluation and observability frameworks using Langfuse, Arize, or similar platforms
  • Understanding of enterprise AI security, privacy, reliability, monitoring, cost management, and user trust requirements
  • Strong architectural judgment balancing model capability, application complexity, performance, cost, and reliability
  • Strong analytical, problem-solving, communication, and cross-functional collaboration skills
  • Ability to work effectively in ambiguous, fast-moving environments and own complex technical initiatives end to end
  • Experience with Cursor, Claude Code, or similar AI-native development tools
  • Experience with GraphRAG, long-context architectures, model routing, caching, cascades, PEFT, LoRA, QLoRA, knowledge distillation, or open-source model deployment
  • Interest in building trustworthy, scalable, measurable, production-ready AI systems
Am I A Good Fit?
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The Company
Year Founded: 2021

What We Do

Weekday is an AI-powered recruitment platform that helps startups hire top-tier engineering and product talent. By leveraging a massive database of white-collar professionals and advanced outreach tools, the company streamlines the hiring process through automated sourcing, AI-driven resume screening, and white-glove contingency services. Their mission is to modernize recruitment by enabling companies to discover and engage passive candidates efficiently, ensuring high-quality hires for critical roles.

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