Data Science Lead - R01570082
Bangalore, Karnataka, India
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- Pay
- Salary not listed in the saved posting
- Work setup
- Unconfirmed
- Employment
- Unconfirmed
What you’ll bring
All qualificationsCore experience
- Strong understanding of LLM-based systems, including retrieval-augmented generation pipelines
- Experience with ML frameworks such as TensorFlow, PyTorch, and Sci-Kit Learn
- Hands-on experience with Azure cloud infrastructure for deploying, monitoring, and scaling AI workloads
- Expertise in statistical analysis and computing, including hypothesis testing, t-test, z-test, and regression techniques
- Proficiency in forecasting techniques including exponential smoothing, ARIMA, and ARIMAX
- Knowledge of classification algorithms such as decision trees and SVM
Preferred experience
- Experience with agent orchestration patterns for multi-step AI workflows
- Bachelor's degree in Computer Science, Data Science, Statistics, Information Technology, or a closely related discipline
- Expertise in prompt engineering to optimize output quality in LLM-based systems
- Proficiency with Great Expectations and Evidently AI for data validation and monitoring
Qualification wording
Strong understanding of LLM-based systems, including retrieval-augmented generation pipelines
Experience with ML frameworks such as TensorFlow, PyTorch, and Sci-Kit Learn
Hands-on experience with Azure cloud infrastructure for deploying, monitoring, and scaling AI workloads
Expertise in statistical analysis and computing, including hypothesis testing, t-test, z-test, and regression techniques
Proficiency in forecasting techniques including exponential smoothing, ARIMA, and ARIMAX
Knowledge of classification algorithms such as decision trees and SVM
Experience with agent orchestration patterns for multi-step AI workflows
Bachelor's degree in Computer Science, Data Science, Statistics, Information Technology, or a closely related discipline
Expertise in prompt engineering to optimize output quality in LLM-based systems
Proficiency with Great Expectations and Evidently AI for data validation and monitoring
Tools in this posting
- Python
- Azure
- PyTorch
- TensorFlow
Source — Tool mentions in context
Required Skills: - Advanced proficiency in Python for code review, scripting, and prototyping - Strong understanding of LLM-based systems, including retrieval-augmented generation pipelines
- Experience with ML frameworks such as TensorFlow, PyTorch, and Sci-Kit Learn - Hands-on experience with Azure cloud infrastructure for deploying, monitoring, and scaling AI workloads - Expertise in statistical analysis and computing, including hypothesis testing, t-test, z-test, and regression techniques
- Certification in Machine Learning, Data Science, or Artificial Intelligence from a recognized institution - Certification in Azure AI or Cloud Services (such as Microsoft Certified: Azure AI Engineer Associate) Employment type
- Strong understanding of LLM-based systems, including retrieval-augmented generation pipelines - Experience with ML frameworks such as TensorFlow, PyTorch, and Sci-Kit Learn - Hands-on experience with Azure cloud infrastructure for deploying, monitoring, and scaling AI workloads
Job description
Job requirements
- Set strategic priorities and determine team focus across AI Enablement and AI Experiments tracks, ensuring measurable progress toward organizational goals
- Serve as the primary liaison with internal business teams to understand workflows, gather requirements, and translate business pain points into actionable technical work
- Collaborate with product teams to align exploration and experimentation efforts with broader product direction
- Lead the team’s operating rhythm, including stand-ups, demos, planning sessions, and progress readouts to leadership and stakeholders
- Allocate resources across workstreams, moving team members based on shifting priorities to maximize impact and efficiency
- Evaluate and shut down experiments or projects that are not delivering results, reprioritizing efforts swiftly and effectively
- Guide the team’s technology roadmap by making decisions on model selection, infrastructure, build-vs-buy tradeoffs, and adoption of new tools
- Define and evolve AI governance and compliance practices, establishing guardrails for responsible AI use, data handling, and decision explainability
- Manage and optimize AI infrastructure spend, tracking LLM costs, token usage patterns, and vendor contracts to ensure cost-effective operations
- Advanced proficiency in Python for code review, scripting, and prototyping
- Strong understanding of LLM-based systems, including retrieval-augmented generation pipelines
- Experience with ML frameworks such as TensorFlow, PyTorch, and Sci-Kit Learn
- Hands-on experience with Azure cloud infrastructure for deploying, monitoring, and scaling AI workloads
- Expertise in statistical analysis and computing, including hypothesis testing, t-test, z-test, and regression techniques
- Proficiency in forecasting techniques including exponential smoothing, ARIMA, and ARIMAX
- Knowledge of classification algorithms such as decision trees and SVM
- Familiarity with tools like KubeFlow and BentoML for ML lifecycle management
- Understanding of probabilistic graph models and advanced distance metrics (Hamming, Euclidean, Manhattan)
- Experience with agent orchestration patterns for multi-step AI workflows
- Expertise in prompt engineering to optimize output quality in LLM-based systems
- Proficiency with Great Expectations and Evidently AI for data validation and monitoring
- Experience defining AI governance frameworks for compliance and responsible data handling
- Bachelor's degree in Computer Science, Data Science, Statistics, Information Technology, or a closely related discipline
- Certification in Machine Learning, Data Science, or Artificial Intelligence from a recognized institution
- Certification in Azure AI or Cloud Services (such as Microsoft Certified: Azure AI Engineer Associate)
Employment type
Employee
Your next step
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Source & posting history
Source notes
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- Pay
No pay amount identified in the saved description.
- Location & working pattern
Bangalore, Karnataka, India
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- Work authorization
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- Status in our records
- Unknown — awaiting fresh evidence
- First seen by us
- Sep 2, 2026
- Recorded sightings
- 9
- Last seen by us
- Sep 10, 2026
These dates show when we found the listing. Check the employer’s website to confirm it is still accepting applications.
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