Data Scientist

Mphasis

$120K — $160K *
Information Technology
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • 8-12 years of experience in advanced Python and ML systems design
  • 8-12 years of delivering end-to-end ML solutions in production environments
  • 6-8 years focused on NLP for enterprise applications
  • 5-7 years working within the LLM ecosystem including design choices and evaluations
  • 6-8 years of experience in model evaluation, monitoring, and risk management
  • 5-7 years in cloud-native ML architectures
  • 6-8 years of technical leadership with strong stakeholder communication skills

Responsibilities

  • Lead complex ML and data science programs
  • Define architecture and approaches for NLP and LLM solutions
  • Establish standards for model evaluation, monitoring, and governance
  • Guide teams on best practices in the ML lifecycle
  • Advise business leaders on ML strategy and feasibility
  • Stay updated on emerging technologies in ML and LLM

Benefits

  • Opportunity to mentor and guide teams
  • Access to cutting-edge ML and NLP technologies
  • Influence on strategic decision-making within the organization
  • Engagement in high-impact projects within the ML space
  • Collaboration with cross-functional teams to solve complex problems
Full Job Description
Role description

Data Science Lead

Experience Level: 8-12 Years

Role Summary

Technical leader responsible for driving complex ML, NLP, and LLM initiatives. Owns solution architecture, quality standards, and technical direction while mentoring teams and advising stakeholders.

Key Responsibilities
  • Lead large-scale data science and ML programs.
  • Define NLP and LLM solution approach and architecture.
  • Set standards for model evaluation, monitoring, and governance.
  • Guide teams on best practices across ML lifecycle.
  • Advise business and leadership on ML strategy and feasibility.
  • Stay current on emerging ML and LLM technologies.

Mandatory / Key Skills (with expected experience)
  • Advanced Python and ML systems design: 8-12 years
  • End-to-end ML delivery in production environments: 8-12 years
  • NLP for enterprise-scale use cases: 6-8 years
  • LLM ecosystem (design choices, evaluation, trade-offs): 5-7 years
  • Model evaluation, monitoring, and risk management: 6-8 years
  • Cloud-native ML architectures: 5-7 years
  • Technical leadership and stakeholder communication: 6-8 years

Education

Bachelor's / Master's / PhD in Computer Science, Data Science, Engineering, or related field.

Process & Ways of Working
  • Strong understanding of SDLC, Agile, and Scrum methodologies.
  • Ability to gather requirements, create technical designs, and write clear documentation.
  • Participate in code reviews and ensure best engineering practices.

Behavioral & Soft Skills
  • Excellent problem-solving and analytical thinking.
  • Strong communication and collaboration skills across cross-functional teams.
  • Self-driven, adaptable, and eager to learn new technologies.

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