Full-Time

Senior Vice President, Engineering

JazzX AI

JazzX AI

AI platform for music production

No salary listed

Mountain View, CA, USA

In Person

Bay Area-based executive role; regular in-person collaboration with leadership, customers, and the broader SAI ecosystem.

Category
Engineering Management (1)
Required Skills
Machine Learning
Observability
REST APIs

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Requirements
  • Has built or scaled engineering organizations for AI-native enterprise software—owning both a shared platform and the application/solution layers on top.
  • Navigates the inherent tension between platform investment, product development, and customer delivery without letting any dimension stall.
  • Transitions teams from early-stage experimentation and speed to disciplined, repeatable systems for production at scale.
  • Aligns engineering execution tightly with business growth goals (toward a $1B+ ARR trajectory).
  • Experience scaling a live engineering organization from early-stage to production at scale—while also launching new capabilities, entering adjacent markets, or expanding into new domains.
  • Defines and evolves architectural boundaries across platform, application, Configuration/integration, and custom layers.
  • Makes clear, durable decisions on what belongs in each layer.
  • Converts repeated deployment patterns into reusable platform services, tooling, and frameworks.
  • Builds AI-native systems that power mission-critical workflows despite imperfect models and evolving capabilities.
  • Bridges AI components with distributed systems, APIs, and enterprise-grade reliability expectations.
  • Translates strategy into clear architecture, delivery rhythms, and execution.
  • Owns roadmap execution from design to stable production systems.
  • Establishes strong SDLC practices, observability, release discipline, and operational rigor without creating unnecessary processes.
  • Designs platforms serving multiple constituencies: internal teams, enterprise customers, and partners.
  • Understands cloud and AI infrastructure, inference cost dynamics, and scaling trade-offs.
  • Makes principled decisions across performance, cost, and AI quality.
  • Deep understanding of enterprise identity, security, permissions, auditability, data lineage, and policy enforcement.
  • Designs for reliability, recoverability, and compliance from the ground up.
  • Comfortable operating in regulated domains where correctness, controls, and process fidelity are critical—including lending, insurance, healthcare, and legal.
  • Treats trust, safety, and governance as first-class engineering requirements, not compliance afterthoughts.
  • Effective leading distributed engineering teams across the US and India.
  • Has recruited and developed strong engineering leaders and senior engineers.
  • Establishes clear decision rights, ownership, and operating cadence.
  • Builds an engineering culture with urgency, craftsmanship, accountability, and company-first thinking.
Responsibilities
  • Own the engineering strategy across the JazzX platform and the solutions built on top of it; define the next stage of architectural maturity and alignment with business growth goals.
  • Build evaluation frameworks, benchmarks, regression coverage, and feedback loops for AI systems quality and enterprise readiness; strengthen explainability, auditability, governance, and human-in-the-loop controls.
  • Make durable decisions about what belongs in the shared platform versus solution layers, configuration/integration, or customer-specific scope; convert repeated patterns into reusable services, frameworks, and tooling.
  • Build strong mechanisms to convert customer deployments and delivery learnings into reusable platform improvements; ensure learning from deployments improves platform assets.
  • Evolve current execution practices into a disciplined, high-throughput engineering system; strengthen planning, design review, and delivery rhythms; raise the bar on release quality, incident response, and observability.
  • Turn deployment experience into a repeatable, faster go-to-production engine; capture deployment learnings into platform improvements; target new domain in production in roughly three months.
  • Evolve platform to be externally extensible and partner-ready; mature APIs, integration patterns, documentation, and developer experience for partner and customer extension.
  • Lead and scale the engineering organization across platform, AI/ML, data, infrastructure, security, QA; establish ownership, decision-making frameworks, operating cadence, and talent development in a distributed US-India environment.
  • Serve as the senior engineering counterpart to Product, GTM, Customer Delivery, and executive leadership; align roadmap, release priorities, customer commitments, and long-term platform investments.
Desired Qualifications
  • Has built or scaled engineering organizations for AI-native enterprise software—owning both a shared platform and the application/solution layers on top.
  • Experience in 0–100 Fast-Growth Startups and High-Growth Scaled Businesses.
  • Architectural Boundary Judgment: defines and evolves architectural boundaries across platform, application, configuration/integration, and custom layers.
  • AI-Native and Technically Credible: deep fluency in modern AI system design and real-world deployment challenges including LLMs, retrieval systems, agents, orchestration, evaluation frameworks, prompt/context engineering, probabilistic system behaviour, guardrails, feedback loops, and quality measurement.
  • Strong Engineering Operator: translates strategy into clear architecture, delivery rhythms, and execution; owns roadmap execution from design to stable production systems; establishes strong SDLC practices, observability, release discipline, and operational rigor.
  • Platform, Infrastructure & Cost Discipline: designs platforms serving multiple constituencies; understands cloud and AI infrastructure, inference cost dynamics, and scaling trade-offs; builds instrumentation and operating rhythms to manage cost and efficiency at scale.
  • Global Leadership Capability: effective leading distributed engineering teams across the US and India.
  • Builder of Teams and Culture: has recruited and developed strong engineering leaders and senior engineers; establishes clear decision rights, ownership, and operating cadence.

JazzX AI is an AI-powered music-creation platform that helps musicians create and produce music. It generates musical ideas, arranges compositions, and refines audio production. Users describe their desired concept in plain English, and the AI produces corresponding musical elements, acting as a collaborative partner that augments a creator’s skills rather than replacing them. The system is designed to fit into existing music production workflows, handling time-consuming or technically demanding tasks to speed up the creative process. The service is likely offered on a subscription or access basis for individual artists, producers, and studios.

Company Size

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Company Stage

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Total Funding

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Headquarters

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Founded

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Simplify Jobs

Simplify's Take

What believers are saying

  • JazzX landed HousingWire 2026 Insiders recognition for Kunal Patel on August 3.
  • Recent 2026 events suggest active marketing, partner-building, and pipeline development.
  • Leadership claims production deployments and audit-ready automation, implying early customer traction.

What critics are saying

  • Tracxn still labels JazzX AI unfunded in July 2026, signaling financing fragility.
  • Mortgage AI startups face crowded competition from C3 AI, Centrical, and similar vendors.
  • If lenders reject enterprise deployment, JazzX remains a demo-first product and stalls commercially.

What makes JazzX AI unique

  • SAIGroup backs JazzX AI, with Dr. Wadhwani pledging up to $1 billion.
  • JazzX targets mortgage workflows with governed end-to-end automation, not isolated point tools.
  • The platform spans intake through servicing, reasoning across agency, investor, and internal rules.

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Benefits

Health Insurance

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Flexible Work Hours

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