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AI/ML Engineer - Snowflake Cloud
Job description
Develop, train, evaluate, and deploy Machine Learning models for business use cases. Build predictive analytics, classification, regression, recommendation, and NLP solutions. Work with structured and unstructured datasets for model development and optimization. Perform feature engineering, model tuning, and performance optimization. Develop data pipelines and ETL/ELT workflows using Snowflake. Build AI/ML solutions leveraging Snowpark and Snowflake's data platform capabilities. Design and implement scalable data models and data warehousing solutions in Snowflake. Develop applications using LLMs and Generative AI technologies. Build Retrieval-Augmented Generation (RAG) pipelines integrating enterprise data sources. Implement prompt engineering and LLM evaluation techniques. Collaborate with Data Engineers, Data Scientists, and business stakeholders to deliver AI-driven solutions.
Responsibilities
Develop, train, evaluate, and deploy Machine Learning models for business use cases. Build predictive analytics, classification, regression, recommendation, and NLP solutions. Work with structured and unstructured datasets for model development and optimization. Perform feature engineering, model tuning, and performance optimization. Develop data pipelines and ETL/ELT workflows using Snowflake. Build AI/ML solutions leveraging Snowpark and Snowflake's data platform capabilities. Design and implement scalable data models and data warehousing solutions in Snowflake. Develop applications using LLMs and Generative AI technologies. Build Retrieval-Augmented Generation (RAG) pipelines integrating enterprise data sources. Implement prompt engineering and LLM evaluation techniques. Collaborate with Data Engineers, Data Scientists, and business stakeholders to deliver AI-driven solutions.
Requirements
2-3 years of hands-on AI/ML development experience Strong Python and SQL programming skills Experience developing and deploying ML models using Snowflake and cloud platforms Hands-on experience with Snowflake Data Cloud, Snowpark, and data warehousing concepts Understanding of the ML lifecycle from data preparation to model deployment and monitoring Experience building and maintaining ETL/ELT pipelines and data transformation workflows
Additional: ••• Experience with Snowpark for Python and Snowflake-native development. Exposure to Generative AI, LLMs, Prompt Engineering, and RAG architectures. Knowledge of LangChain, Vector Databases, and Semantic Search. Experience with MLOps practices, model monitoring, and CI/CD pipelines. Familiarity with Docker and containerized deployments. Exposure to Snowflake Cortex AI capabilities. Experience with AWS, Azure, or GCP cloud environments is a plus. SnowPro Certification or relevant Snowflake certifications are preferred.
Description copied from Infosys's careers page. Read the full posting before you apply.
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