Senior Sales Engineer

Kamiwaza AI

$130K — $150K *
Enterprise Technology
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • 8+ years in customer-facing technical roles, including 5+ years in Sales Engineering or Solutions Engineering for infrastructure, enterprise software, data platforms, or AI/ML products.
  • Demonstrated history of leading technical wins and establishing credibility with both technical and executive stakeholders.
  • Deep understanding of enterprise AI architectures including LLMs, RAG, and agent orchestration patterns.
  • Proficiency in distributed data architectures, including federated systems and data mesh concepts.
  • Experience with designing solutions for various deployment environments: on-prem, air-gapped, and hybrid.
  • Strong grasp of enterprise security topics related to AI deployment, including access control and compliance requirements.
  • Excellent communication skills for engaging with both C-suite executives and technical teams.

Responsibilities

  • Lead technical discovery: Clarify ambiguous customer goals into actionable use cases and validation plans.
  • Design and present architectures: Create reference architectures for diverse deployment environments, emphasizing the advantages of data-in-place solutions.
  • Guide customers in understanding Kamiwaza's ontology-driven architecture and its implications for managing distributed data.
  • Develop demo assets and maintain POC environments, focusing on creating reusable content as a high priority deliverable.
  • Facilitate the technical win by managing enterprise buyers throughout the discovery and POC processes, documenting success criteria.
  • Act as the customer advocate, collaborating with Product and Engineering to incorporate field insights into development.
  • Support a seamless post-sale knowledge transfer to implementation teams.

Benefits

  • Low-deductible medical plans.
  • Flexible time off policies.
  • Supportive family leave policies.
Full Job Description
Senior Sales Engineer

Role Overview

Kamiwaza is hiring a Senior Sales Engineer to secure the technical win on complex enterprise AI opportunities. Working with the Revenue team, you'll qualify deals, run discovery, shape solution architectures, and deliver demos and POCs that prove business value - then ensure a clean transition to implementation.

This role is for a consultative builder who's equally comfortable in the exec boardroom and deep in an architecture whiteboard session. You'll be credible across the full stack of enterprise AI conversations: LLMs, RAG, distributed data architectures, knowledge graphs, and agentic workflows.

Key Responsibilities
  • Lead technical discovery and solutioning: Translate ambiguous customer goals into prioritized use cases, success criteria, and an executable validation plan.
  • Architect and present solutions: Design reference architectures for cloud, on-prem, hybrid, and air-gapped environments. Articulate the data-in-place value proposition against centralization-first alternatives.
  • Guide customers through Kamiwaza's distributed data and ontology-driven architecture, helping them understand how agents reason across federated, semantically rich enterprise data without moving it in transit.
  • Build the demo foundation: Develop and maintain reusable demo assets, POC environments, reference architectures, and platform talk tracks. This is a high-priority early deliverable.
  • Enable the technical win: Work directly with enterprise buyers from initial discovery through POC completion, ensuring success criteria are defined, met, and documented.
  • Be the customer's voice: Translate field insights into product feedback and partner closely with Product and Engineering on gaps and accelerators.
  • Support post-sale handoff: Transfer knowledge cleanly to delivery teams and ensure implementation success.

Minimum Requirements
  • 8+ years in customer-facing technical roles, including 5+ years in Sales Engineering or Solutions Engineering for infrastructure, enterprise software, data platforms, or AI/ML products.
  • Track record of leading technical wins and building credibility with both technical (CTO, architect) and executive (C-suite) stakeholders.
  • Genuine fluency in enterprise AI architectures: LLMs, RAG, vector databases, embedding pipelines, evaluation and observability, and agent orchestration patterns.
  • Working knowledge of distributed data architectures: federated data platforms, data mesh concepts, and the realities of AI across siloed or air-gapped data stores.
  • Conceptual familiarity with knowledge graphs and ontology-driven data models - enough to position their role in enterprise AI architectures and speak credibly with customer architects.
  • Demonstrated experience designing for on-prem, air-gapped, and hybrid environments, including security reviews, network constraint conversations, and data sovereignty requirements.
  • Comfort with enterprise security topics: access control models including RBAC and relationship-based variants, audit and compliance requirements, and how security posture shapes AI deployment decisions.
  • Executive communication: Confident with C-suite, equally capable whiteboarding architecture with a technical team. Strong written proposals and discovery documentation.
  • Startup readiness: You've operated in environments where process isn't fully built and you're expected to create it. High autonomy, fast iteration, minimal red tape.
  • Travel: 20-35% for customer meetings, workshops, and field engagements.
Preferred Qualifications
  • Track record of technical wins on six- and seven-figure deals.
  • Hands-on experience with knowledge graph platforms (e.g., Neo4j, Stardog) or ontology frameworks (OWL, RDF).
  • Experience with data catalog, data lineage, or master data management solutions in enterprise environments.
  • Background in regulated industries: financial services, healthcare, defense, or public sector.
  • Familiarity with MCP (Model Context Protocol), agentic workflow design, or multi-agent system patterns.
How to Apply

Ready to build the foundation of the GenAI revolution? Please include a short write-up of a customer problem you solved end-to-end and a link to any reusable asset or press release that came out of it.

P.S. If you use GenAI to craft your application, we'll probably find out-and we'd love to learn more about how you did it!

This role offers a base salary between $130,000 and $150,000, plus equity and benefits. Actual compensation will reflect an individual's experience, impact, and location. Our benefits include low-deductible medical plans, flexible time off, and supportive family leave policies.

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