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Senior AI/ML Architect - Snowflake

jps tech solutions • United State
Visa Sponsorship
This Job is No Longer Active This position is no longer accepting applications
AI Summary

Design and deploy ML pipelines using Snowflake features and partner tools. Provide technical expertise on Snowflake for AI/ML workloads and collaborate with cross-functional teams.

Key Highlights
Provide technical expertise on Snowflake for AI/ML workloads
Design and deploy ML pipelines using Snowflake features and partner tools
Collaborate with cross-functional teams
Technical Skills Required
SQL Python Snowflake AWS Sagemaker AzureML Dataiku Datarobot H2O Jupyter Notebooks Pandas PyTorch TensorFlow SciKit-Learn
Benefits & Perks
Remote work
W2 contract

Job Description


Job Category: Architect

Job Type: Remote

Job Location: New York City New York State

Compensation: Depends on Experience

W2: W2-Contract Only; Kindly note that applications on a C2C basis will not be considered for this role.

Job Description

Job Description:

AI/ML ARCHITECT

  • Be a technical expert on all aspects of Snowflake in relation to the AI/ML workload.
  • Provide customers with best practices and advise as it relates to Data Science workloads on Snowflake
  • Build and deploy ML pipelines using Snowflake features and/or Snowflake ecosystem partner tools based on customer requirements.
  • Work hands-on where needed using SQL, Python, to build POCs that demonstrate implementation techniques and best practices on Snowflake technology within the Data Science workload.
  • Follow best practices, including ensuring knowledge transfer so that customers are properly enabled and are able to extend the capabilities of Snowflake on their own
  • Maintain deep understanding of competitive and complementary technologies and vendors within the AI/ML space, and how to position Snowflake in relation to them
  • Work with System Integrator consultants at a deep technical level to successfully position and deploy Snowflake in customer environments
  • Provide guidance on how to resolve customer-specific technical challenges.
  • Support other members of the Professional Services team develop their expertise.
  • Collaborate with Product Management, Engineering, and Marketing to continuously improve Snowflake’s products and marketing.
  • Ally ML engagement to promote loan level forecasting model from Sagemaker to Snowflake. Leverage HPO and native ML features in SF

Requirements

  • University degree in data science, computer science, engineering, mathematics or related fields, or equivalent experience.
  • 12-14 years experience working with customers in a pre-sales or post-sales technical role.
  • Outstanding skills presenting to both technical and executive audiences, whether impromptu on a whiteboard or using presentations and demos.
  • Thorough understanding of the complete Data Science life-cycle including feature engineering, model development, model deployment and model management.
  • Strong understanding of MLOps, coupled with technologies and methodologies for deploying and monitoring models.
  • Experience and understanding of at least one public cloud platform (AWS, Azure or GCP).
  • Experience with at least one Data Science tool such as AWS Sagemaker, AzureML, Dataiku, Datarobot, H2O, and Jupyter Notebooks.
  • Hands-on scripting experience with SQL and at least one of the following; Python, Java or Scala.
  • Experience with libraries such as Pandas, PyTorch, TensorFlow, SciKit-Learn or similar.

Bonus Points For Having

  • Experience with GenerativeAI, LLMs and Vector Databases.
  • Experience with Databricks/Apache Spark.
  • Experience implementing data pipelines using ETL tools.
  • Experience working in a Data Science role.
  • Proven success at enterprise software.
  • Vertical expertise in a core vertical such as FSI, Retail, Manufacturing, etc.

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