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Procore · procore.com

Staff GTM AI Engineer

5dposted dateData / ML

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Location
IN - India - Bangalore
Department
not stated
Type
Full time
Seniority
staff / principal
Salary
not published
Posted
2026-10-05 (startDate)
First seen
2026-10-05
Classified by
rules
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Job description (as published)

We are looking for a Staff Engineer, GTM AI  to join the Procore India team. In the role you will lead the technical strategy and implementation for our Go-to-Market (GTM) AI systems. This is a high-visibility, "Staff+" role where you will not just contribute code—you will define the architectural foundation for our internal agentic solution. You will lead the transition from rapid experimentation to a scalable, production-grade agentic engine that empowers our sellers. If you are a systems-thinker who thrives on scaling complex, event-driven AI platforms and you want to define "how things are built" at an enterprise scale, this is your role. Responsibilities - Architectural Ownership - System Authority: Serve as the technical lead for our Seller Agentic platform. You own the architecture across business functions and are responsible for its long-term health and scalability. - Platform Evolution: Design and build the next-gen data/AI infrastructure. This includes robust integration layers, real-time intelligence pipelines, and service architectures that handle high-volume data without degradation. - Risk Mitigation: Anticipate scaling bottlenecks. You will define the roadmap for iterative modernization to ensure the platform is future-proofed before performance issues surface - Technical Execution & Mentorship - Hands-on Leadership: While you are a strategic leader, you are also a practitioner. You will contribute to writing and shipping the code. - Engineering Excellence: Set the standards for the team. You will ensure that rapid prototyping is built on sound, sustainable foundations, teaching others how to manage complexity as the platform scales. - The "Golden Record" Strategy: Lead the data strategy to establish a single, trusted system of record for account intelligence, ensuring consistency across the revenue lifecycle. - Engineering Outcomes You’ll Own - Scalable Architecture: Build a foundation that supports moving from one use case to dozens without regressions or downtime. - Systemic Trust: Ensure AI outputs are auditable, accurate, and consistent. You will turn "Trust" into a provable engineering metric, not a marketing claim. - Multiplier Effect: Your abstractions and API boundaries should enable junior engineers to ship faster and safer. You are here to amplify the team's output. Requirements - Experience: 7–10+ years in software engineering, with a proven track record of owning large-scale, distributed system architectures. - Languages & Infra: Expert-level fluency in Python and modern cloud environments (AWS). - Agentic Platforms: Demonstrated experience building on Agentic frameworks (e.g., LangGraph, Claude, Vertex AI, Workato). - AI/ML Ops: Deep understanding of LLMs, RAG, vector databases, memory systems, and prompt engineering at scale. - Architecture: Mastery of Kubernetes, microservices, and high-throughput event-driven architectures. Leadership & Soft Skills - Security Mindset: Proven ability to build enterprise-grade products with strict compliance, data privacy, and security-first principles. - Communication: A track record of translating complex technical trade-offs into business-aligned roadmaps for executive leadership. - Mentorship: Experience guiding engineering teams through hyper-growth or rapid scaling phases. Nice to Have - Experience with Revenue Tech / CRM (Salesforce,GONG, Outreach  etc.) data structures. - Exposure to AI Evaluation frameworks (automated testing/QA for LLM outputs). - Experience working in a global-local model, driving alignment between distributed engineering teams.