Data Scientists /AI/ML-Remote

Tanisha Systems

New York, NY(remote)

JOB DETAILS
SALARY
$130,000 Per Year
JOB TYPE
Full-time
SKILLS
Amazon Web Services (AWS), Analysis Skills, Application Programming Interface (API), Artificial Intelligence (AI), Banking Services, Best Practices, Biology, Business Process Outsourcing, Cloud Computing, Computer Science, Cross-Functional, Customer Support/Service, Data Management, Data Science, Energy & Utilities, GCP (Good Clinical Practices), Government, Healthcare, Identify Issues, Information Technology Outsourcing, Insurance, Machine Learning, Manufacturing, Microsoft Windows Azure, Model Validation, Modeling Languages, Performance Modeling, Problem Solving Skills, Production Systems, Professional Services, Python Programming/Scripting Language, Quality Assurance, Quality Management, Requirements Management, Retail, Scalable System Development, Science Library, Software Development, Software Engineering, Stock Market, Technical Leadership, Technical Support, Test Strategy
LOCATION
New York, NY
POSTED
30+ days ago
Job description: -

Position #1: Data Scientists - 1 Tech Lead a

Headcount: 1
Salary range: 130-140 K
? AI/ML Lead Engineer (8+ yrs Years Experience)
? Key Responsibilities
  • Full ML Lifecycle Management: Drive projects from initial ideation to production deployment, including data pipeline development, model training, validation, and serving.
  • LLM & Agentic Development: Design, implement, and optimize solutions utilizing Large Language Models (LLMs) and developing sophisticated Agentic AI systems to solve complex business problems.
  • Platform Expertise: Leverage and integrate core generative AI platforms, including Gemini and Amazon Bedrock , to build scalable and efficient solutions.
  • MLOps & Tools: Implement MLOps best practices, utilizing tools like MLFlow for experiment tracking, model versioning, and pipeline orchestration.
  • Quality Assurance: Develop and execute comprehensive testing strategies for LLM applications, including utilizing frameworks like DeepEval for prompt engineering and model output quality.
  • Analytical Skill: Apply strong analytical skills to evaluate model performance, diagnose issues, and iterate on solutions to achieve maximum business impact.
  • Collaboration: Work closely with cross-functional teams (data scientists, product managers, and software engineers) to define requirements and deliver integrated AI features.
? Required Qualifications
  • Experience: 8+ years of professional experience in Machine Learning Engineering, AI Development, or a closely related field.
  • Education: Master’s degree in Computer Science, Data Science, Engineering, or a quantitative field.
  • Technical Proficiency:
    • Expertise in Python and core ML/Data Science libraries (e.g., PyTorch, TensorFlow, Scikit-learn).
    • Proven experience in deploying models on major cloud platforms (GCP, AWS, or Azure).
    • Deep understanding of the architecture and fine-tuning of Large Language Models.
  • Domain Knowledge: Practical experience with MLOps tools (e.g., MLFlow ) and validation frameworks (e.g., DeepEval ).
  • Problem Solving: Demonstrated ability to apply analytical skills to complex, ambiguous problems and translate insights into actionable engineering solutions.
Preferred Qualifications
  • Hands-on experience developing applications or services using Google's Gemini API or models.
  • Direct experience with AWS services related to AI/ML, particularly Amazon Bedrock .
  • Experience in building and managing multi-step, reasoning-based Agentic AI systems.
  • Prior experience in optimizing models for latency and cost efficiency in a production environment.

Position #2: AI ML Engineer
Headcount: 3
Salary range: 110-120 K
? AI/ML Engineer - Mid-Level (7+ Years Experience)
Overview

We are seeking an innovative and results-oriented Mid-Level

AI/ML Engineer

to join our dynamic team. This role is crucial for transforming Client concepts into robust, production-ready AI solutions. The ideal candidate possesses a strong background in Machine Learning engineering, extensive experience with cutting-edge LLMs and cloud-based AI services, and a commitment to maintaining high-quality, responsible AI systems.


? Key Responsibilities
  • Full ML Lifecycle Management: Drive projects from initial ideation to production deployment, including data pipeline development, model training, validation, and serving.
  • LLM & Agentic Development: Design, implement, and optimize solutions utilizing Large Language Models (LLMs) and developing sophisticated Agentic AI systems to solve complex business problems.
  • Platform Expertise: Leverage and integrate core generative AI platforms, including Gemini and Amazon Bedrock , to build scalable and efficient solutions.
  • MLOps & Tools: Implement MLOps best practices, utilizing tools like MLFlow for experiment tracking, model versioning, and pipeline orchestration.
  • Quality Assurance: Develop and execute comprehensive testing strategies for LLM applications, including utilizing frameworks like DeepEval for prompt engineering and model output quality.
  • Analytical Skill: Apply strong analytical skills to evaluate model performance, diagnose issues, and iterate on solutions to achieve maximum business impact.
  • Collaboration: Work closely with cross-functional teams (data scientists, product managers, and software engineers) to define requirements and deliver integrated AI features.
? Required Qualifications
  • Experience: 4-7 years of professional experience in Machine Learning Engineering, AI Development, or a closely related field.
  • Education: Master’s degree in Computer Science, Data Science, Engineering, or a quantitative field.
  • Technical Proficiency:
    • Expertise in Python and core ML/Data Science libraries (e.g., PyTorch, TensorFlow, Scikit-learn).
    • Proven experience in deploying models on major cloud platforms (GCP, AWS, or Azure).
    • Deep understanding of the architecture and fine-tuning of Large Language Models.
  • Domain Knowledge: Practical experience with MLOps tools (e.g., MLFlow ) and validation frameworks (e.g., DeepEval ).
  • Problem Solving: Demonstrated ability to apply analytical skills to complex, ambiguous problems and translate insights into actionable engineering solutions.
Preferred Qualifications
  • Hands-on experience developing applications or services using Google's Gemini API or models.
  • Direct experience with AWS services related to AI/ML, particularly Amazon Bedrock .
  • Experience in building and managing multi-step, reasoning-based Agentic AI systems.
  • Prior experience in optimizing models for latency and cost efficiency in a production environment.


Additional Job Details:






About Tanisha Systems, Inc.

Tanisha Systems, founded in 2002 in Massachusetts-*, is a leading provider of Custom Application Development and end-to-end IT Services to clients globally. We use a client-centric engagement model that combines local on-site and off-site resources with the cost, global expertise and quality advantages of off-shore operations. We deliver Custom Application Development, Application Modernization, Business Process Outsourcing and Professional IT Services from office locations in * and *.


Tanisha Systems services clients in Government, Banking & Financial Markets, Insurance, Healthcare, Retail & Consumer Goods, Energy & Utilities, Life Sciences, Telecom, Manufacturing and Transportation Industries around the globe. Our engagement model provides a flexible operational environment that empowers our clients with the right levels of control.



Want to read more about Tanisha Systems? Visit us at

www.tanishasystems.com

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Tanisha Systems