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Austin, TX, USA
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Responsibilities:
Architect and establish the platform's four foundational pillars:
Qualifications & Skills
Qualifications:
| Years | Skills/Experience |
| 10 | Experience in software or data engineering |
| 3 | Experience building LLM-based systems |
| 2 | Experience designing and operating agentic AI systems in production — systems serving live business users or workloads. Prototypes, pilots, internal demos, and RAG chatbots do not meet this bar. |
| Served as the lead architect of at least one multi-agent system that has run in production for 12+ months, with direct ownership of supervisory/planner–worker orchestration, tool calling, state and memory management, and error recovery for long-running workflows. | |
| Prior experience building Agent Registry or Catalog | |
| Production experience with agent-generated code that executes: sandboxed execution, automated validation and testing of generated artifacts, and engineer review-and-approve workflows gating deployment. (Directly relevant — this platform generates executable ingestion code and DBT packages.) | |
| Built and operated agent evaluation harnesses in production: offline eval suites, regression testing for prompt and model changes, and measurable quality gates that block release on failure. | |
| Operated LLM observability in production: per-run tracing of agent decisions and tool calls, token and cost monitoring, and hands-on triage of agent failures and incidents. Implemented guardrails and human-in-the-loop controls in a governed environment: approval gates, permission-scoped tool access for agents, audit logging, and rollback procedures | |
| Has built or deployed MCP servers/clients or OpenAI-compatible tool interfaces in a production system — not just consumed a vendor API. | |
| Strong Python and SQL; CI/CD for data platforms; SSO (SAML/OIDC) and RBAC design. | |
| Experience with Snowflake (Snowpark, Streamlit, Cortex AI) |
Bachelor's degree
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