Snowflake Computing

Principal /Staff AI Engineer - Cortex Code Agentic System

Snowflake Computing$150K — $200K *
Information Technology
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's degree in Computer Science, Engineering, Statistics or related field; Master's preferred but not required.
  • 10+ years of experience with AI/ML software in production, including leadership and mentoring roles.
  • Proven ability to create and manage evaluation frameworks and experimentation processes for AI systems.
  • Strong programming skills in Python, TypeScript, or Go; proficiency in at least two languages required.
  • Excellent written and verbal communication skills, capable of effectively explaining complex technical concepts to diverse audiences.
  • (Optional) Familiarity with data engineering tools and concepts such as dbt and Airflow.

Responsibilities

  • Own and refine strategies for tuning agent behavior for advanced coding tasks.
  • Design and improve infrastructure for large-scale experimentation and prompt optimization.
  • Lead postmortems to analyze quality issues and translate findings into action plans.
  • Align cross-functional teams on quality standards and mentor engineering staff.
  • Ensure dependable quality systems through rigorous operational practices.

Benefits

  • Flexible work environment with opportunities for remote work.
  • Professional development support including mentorship and growth opportunities.
  • Collaborative team culture focusing on innovation and high standards.
  • Access to advanced tools and technologies for cutting-edge projects.
Full Job Description


About the Role

The Cortex Code team is building the future of coding agents for working with data. See our flagship product in action: Cortex Code in Action: Live Demos + AMA.

As a Staff/Principal AI Engineer on Cortex Code , you will help define architect agent behavior at enterprise scale by building the agentic systems and methodology that make our users build cutting edge agentic systems that are efficient, repeatable, auditable, and shippable. You'll partner with modeling, platform, and product leadership to turn customer pain into golden scenarios, metrics, and experiment loops that the whole team can trust.

Responsibilities:
  • Agent strategy & systems: Own major pillars of the quality stack: tuning agent behavior to engage on next generation agentic coding tasks.
  • Hill-climb infrastructure: Design and evolve pipelines and tooling that support large-scale experimentation, error mining, and iteration on prompts/tools/workflows with clear before/after signals.
  • Deep analysis & prioritization: Lead postmortems on quality regressions; cluster failure modes; translate findings into a prioritized roadmap for engineering and modeling partners.
  • Cross-functional leadership: Align product, infra, and applied AI on what "good" means for critical customer workflows; mentor engineers and uplevel eval craft across the team.
  • Production-minded rigor: Ensure quality systems are dependable in practice-reproducible runs, stable datasets, versioning, and operational clarity when things drift.


Requirements:
  • Bachelor's degree in Computer Science, Engineering, Statistics, or a related field. Master's or higher preferred but not a requirement.
  • 10+ years of experience shipping AI/ML-backed software in production, including Staff-level ownership of technical direction, cross-team delivery, and mentoring.
  • Strong track record building and operating eval harnesses, measurement, and/or experimentation loops for LLM/agent systems-not only one-off benchmarks.
  • Proficiency in programming languages such as Python, TypeScript, Go (strong in at least two).
  • Exceptional communication skills: crisp write-ups, constructive debate, and ability to influence without authority across engineering and product.
  • (Optional) Experience with data engineering pipelines (dbt, Airflow), data modeling, data analysis, retrieval systems, and semantic layers is a plus.


Nice to have
  • Deep experience with agentic coding tools (IDE agents, CLI agents) and intuition for model strengths, failure modes, and prompting limits.
  • Background in data engineering (dbt, Airflow), analytics, retrieval / RAG, or semantic layers-highly relevant for data-centric coding agents.
  • Prior work on LLM observability, safety/guardrails, or quality systems used as release gates in production.


You may be a particularly good fit if you
  • Have built and owned complex quality + data pipelines-substantial state, branching logic, and operational requirements.
  • Thrive in high-intensity environments with short feedback loops and high standards for rigor.
  • Take ambiguous "quality is slipping" problems to completion: you care about clear metrics, reproducibility, and sustained improvement-not one-off score bumps.
  • Are a power user of modern coding agents and care about turning intuition into systematic measurement and team-wide practice.


For jobs located in the United States, please visit the job posting on the Snowflake Careers Site for salary and benefits information: careers.snowflake.com

About Snowflake Computing

Snowflake is a cloud-based data-warehousing company that was founded in 2012. The company provides a data platform that allows customers to store and analyze data using cloud-based infrastructure. Snowflake's platform is designed to be highly scalable and flexible, allowing customers to easily add or remove computing resources as needed. The company's customers include a wide range of businesses, from startups to Fortune 500 companies. Snowflake has received significant funding from investors and has been recognized as one of the fastest-growing companies in the United States.
Learn more about Snowflake Computing
Size
2,037 employees
Market Cap
$44.9 billion
Industry
Net Income
-$539.1 million
Founded
2012
Revenue
$592 million
NASDAQ

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