Software Engineer, Applied AI
Brak informacji o wynagrodzeniu
MidFull-time
#273286·Dodano 7 miesięcy temu·75
Źródło: SnowflakeTech Stack / Keywords
AISnowflakeLLMPythonSQLData ScienceData modelingETL
Firma i stanowisko
Snowflake is building a high-impact team to help the world’s most innovative companies unlock the power of AI, placing the role at the intersection of product, engineering, and customer success, building production-grade AI systems using Snowflake AI Platform, Cortex, and native LLM capabilities.
Wymagania
Minimum Qualifications:
- Bachelor’s degree in Computer Science, Engineering, or related technical field, or equivalent practical experience.
- 3+ years of professional software engineering experience.
- Passion for tackling complex and ambiguous technical challenges using cutting-edge AI research.
- Hands-on experience building and shipping LLM-based or ML applications.
- Proven experience with data modeling, ETL/ELT development, and performance tuning.
- Advanced proficiency in Python, Java, C++, or other backend programming languages with scripting and automation of data workflows.
- Excellent problem-solving and communication skills.
- Ability to thrive and adapt quickly in a fast-paced, dynamic environment focused on Generative AI.
Preferred Qualifications:
- Experience building production applications using LLMs, including RAG and agentic workflows.
- Hands-on experience with the MLOps lifecycle: model deployment, monitoring, and evaluation in cloud environments (AWS, Azure, GCP).
- Strong understanding of data warehousing principles, architecture, and best practices.
- Experience in a customer-facing role (e.g., solutions architect).
- Startup experience.
Obowiązki
- Architect, build, and deploy enterprise-grade AI solutions including sophisticated AI agents from prototype to production.
- Build and iterate on AI pipelines and agents, contributing to evaluation frameworks and observability infrastructure.
- Rapidly design, iterate, and ship high-quality code and ML pipelines using Python and SQL.
- Own full lifecycle of AI solution implementation including deployment, monitoring, and optimization in secure large-scale production environments.
- Partner with customer data science and engineering teams as a technical expert and trusted advisor.
- Architect and implement rigorous data validation, maintain SLA observability, and manage complex system interdependencies.
- Collaborate cross-functionally with Snowflake’s Product and Engineering teams to provide real-world feedback impacting AI platform development.
- Progressively take on larger ownership from component to customer engagement as engineering judgment and impact grow.
Benefity
- Opportunity to work with cutting-edge AI tools and technologies.
- Collaborate with leading global enterprise customers.
- Access to Snowflake's advanced AI capabilities and infrastructure.
- Dynamic and fast-growing company scaling its AI team.
Snowflake
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