Principal AI & DevOps Engineer

Revvity, Inc.

Thane

On-site

INR 4,000,000 - 8,000,000

Full time

4 days ago
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Job summary

Revvity, Inc. is seeking a Principal AI & DevOps Engineer to lead strategic AI initiatives, architect scalable production systems, and shape how we deploy AI/ML across the organization.

You will own end-to-end delivery, work with Python backends and JavaScript/Flutter frontends, and mentor teams while driving observability and data governance. This is a hands-on leadership role at scale.

Qualifications

  • Bachelor's or Master's degree in Computer Science or equivalent field
  • 8–12 years of hands-on experience in full-stack development
  • Proven DevOps & Automation expertise: CI/CD tooling, deployment workflows, and IaC in production

Responsibilities

  • Architect and deliver production-quality full-stack AI-enabled apps
  • Design context engineering strategies for LLMs and data flows
  • Own end-to-end deployment and CI/CD pipelines with automated tests
  • Drive data quality, pipeline governance, and ML lifecycle management
  • Establish observability with dashboards and KPI-linked health signals
  • Provide technical leadership and mentor peers during demos

Skills

Full-stack dev
DevOps
CI/CD
IaC
Python
JavaScript
Flutter
Context engineering

Education

Bachelor/Master in CS

Tools

AWS CloudWatch

Job description

Are a seasoned technologist who thrives at the intersection of artificial intelligence and business transformation? Do you have a proven track record of turning complex AI/ML concepts into scalable, production-grade systems that move the needle for enterprise operations? If so, we want to hear from you.

We are looking for a Principal AI & DevOps Engineer to join our team — a strategic builder and technical leader who brings deep expertise, sharp instincts, and a bias for action. You won't just execute; you'll shape the direction of how we architect, deploy, and scale AI/ML solutions across the organization.

What You'll Own
First 30 Days — Strategic Discovery & Architecture Assessment
  • Enterprise Systems Audit: Rapidly assess our existing technical landscape, business architecture, and active AI workstreams — bringing your experience to quickly identify gaps, redundancies, and high-leverage opportunities others might miss.
  • Cross-Functional Stakeholder Engagement: Lead structured discovery sessions across business units to surface operational friction points and define a prioritized roadmap for AI/ML intervention — drawing on your experience translating business pain into technical solutions.
  • Technology Evaluation & Benchmarking: Apply your deep knowledge of emerging AI/ML technologies, industry trends, and software engineering best practices to evaluate our current toolchain and recommend improvements with clear rationale.
  • Strategic Value Mapping: Deliver a well-reasoned assessment of where generative AI can reduce manual overhead, unlock creative capacity, or create competitive advantage — backed by your own experience doing exactly that.
Beyond 30 Days — Build, Lead, and Scale
  • Full-Stack AI Application Development: Architect and deliver production-quality, full-stack AI-powered applications — leveraging Python backends and JavaScript/Flutter frontends — with a focus on performance, maintainability, and user experience informed by years of hands‑on delivery.
  • Context Engineering & LLM Optimization: Design and implement sophisticated context engineering strategies — orchestrating enterprise data, memory systems, tool outputs, and prompt chaining within LLM context windows to produce accurate, structured, and reliable outputs at scale.
  • End-to-End Pipeline Ownership: Own the full deployment lifecycle. Design, implement, and continuously improve CI/CD pipelines for LLM applications — including automated testing frameworks — applying best practices you've refined over your career.
  • Data Engineering & ML Lifecycle Management: Drive data quality, pipeline integrity, and dataset governance to fuel deployed ML models — bringing mature engineering discipline to data validation, query optimization, and model input management.
  • Observability & Performance Engineering: Establish robust monitoring frameworks using tools like AWS CloudWatch, define and track AI performance against business KPIs, and deliver executive-ready dashboards and reports that connect system health to business outcomes.
  • Technical Leadership & Knowledge Sharing: Mentor peers through code reviews, lead architectural discussions, and present fully operational solutions during stakeholder demos — translating complex AI/ML architecture into clear, compelling narratives for both technical and non-technical audiences.
Required Qualifications
  • Bachelor's or Master's degree in Computer Science or equivalent field
  • 8–12 years of hands‑on experience in full-stack development
  • Proven DevOps & Automation expertise: Deep experience with CI/CD tooling, deployment workflows, and Infrastructure as Code (IaC) in production environments

This role is designed for someone who brings their own perspective, methodology, and technical philosophy — not just executes a playbook. We value engineers who have strong opinions, loosely held, and the experience to back them up.

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