Data Scientist

CYNET SYSTEMS INC.
Saint Paul, United States of America
3 days ago

Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Working hours
Regular working hours
Languages
English
Experience level
Senior

Job location

Saint Paul, United States of America

Tech stack

Amazon Web Services (AWS)
Data analysis
Azure
Big Data
Cloud Computing
Computer Programming
Data Centers
Data Infrastructure
ETL
Data Security
Data Systems
Python
Machine Learning
Performance Tuning
SQL Databases
Cloud Platform System
Large Language Models
Model Validation
Reliability of Systems
Data Analytics
Performance Monitor
Data Management
Machine Learning Operations
Data Pipelines

Job description

  • Investigate the feasibility of applying scientific principles to technologies, processes, and products.
  • Plan and execute research initiatives to validate concepts and solutions.
  • Build analytics tools leveraging data pipelines to deliver actionable insights on customer acquisition, operational efficiency, and business performance.
  • Participate in intellectual property evaluations and support patent development activities.
  • Collaborate with internal and external subject matter experts to enhance research outcomes.
  • Partner with stakeholders across the organization to identify data-driven business opportunities.
  • Mine and analyze large datasets to optimize product development, clinical marketing, and business strategies.
  • Evaluate the effectiveness and accuracy of new data sources and data collection methodologies.
  • Develop and deploy custom data models, algorithms, and predictive analytics solutions.
  • Implement predictive modeling techniques to optimize customer experience, revenue generation, and targeting strategies.
  • Collaborate with cross-functional teams to deploy models and monitor performance outcomes.
  • Develop tools and processes to track model performance, data accuracy, and system reliability.
  • Support data infrastructure needs and resolve data-related technical challenges.
  • Ensure data security and compliance across multiple data centers and cloud environments (AWS/Azure).
  • Build and enhance tools for analytics and data science teams to improve productivity and innovation.
  • Collaborate with data and analytics teams to continuously improve system capabilities.
  • Ensure adherence to quality systems and compliance requirements in all deliverables., * Drive improvements in business performance, operational efficiency, and customer outcomes.
  • Influence key organizational objectives through data-driven insights.

Interactions And Communication:

  • Communicate complex insights clearly to both technical and non-technical stakeholders.
  • Lead discussions and presentations to align cross-functional teams and drive decision-making.

Requirements

  • Bachelor s degree with 9+ years of experience, or Master s degree with 6+ years of experience.
  • Proven experience building and deploying production-grade Retrieval-Augmented Generation (RAG) and Large Language Model (LLM) systems.
  • Strong expertise in evaluating retrieval quality, orchestration, cost optimization, and observability for AI systems.
  • Experience in complex classification problems with overlapping labels and regulatory implications.
  • Ability to work with cross-functional stakeholders including clinical SMEs, Quality, and IT/Security teams.
  • Strong programming skills in Python and SQL.
  • Experience with vector databases and cloud platforms such as AWS or Azure.

Skills:

  • Advanced analytical and problem-solving capabilities.
  • Strong understanding of data modeling, machine learning, and AI system design.
  • Experience with data pipelines, ETL processes, and large-scale data processing.
  • Ability to translate complex technical concepts into business insights.
  • Strong communication and stakeholder management skills.
  • Expertise in model evaluation, error analysis, and performance optimization.

Functional Knowledge:

  • Comprehensive technical expertise in data science, machine learning, and analytics.
  • Ability to recommend and implement improved processes across teams.

Business Expertise:

  • Strong understanding of industry best practices and business integration of data solutions.
  • Ability to drive business outcomes through data-driven strategies.

Leadership:

  • Mentor junior team members and provide technical guidance.

  • Lead cross-functional projects with moderate complexity and risk.

Problem Solving:

  • Solve complex problems using advanced analytical techniques and innovative approaches.
  • Apply critical thinking to evaluate multiple data sources and solutions.

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