AI Lead (Technical)

Weekday AI

Mumbai

On-site

INR 3,800,000 - 7,500,000

Full time

14 days+
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Job summary

Weekday AI is seeking a senior leader to head AI/ML operational and platform engineering in Mumbai. You will drive technical excellence, guide AI/ML adoption across business units, and mentor AI Engineering, Data Engineering, and Platform teams.

You will oversee architecture, evaluation of tools and cloud services (Azure AI, AWS SageMaker, Vertex AI), and ensure governance, security, and observability across AI/ML systems.

Qualifications

  • Hands-on experience delivering AI/ML platforms in production.
  • Strong leadership and mentoring of multiple engineering teams.
  • Experience with cloud-native architectures and DevOps practices.

Responsibilities

  • Lead deep-dive technical investigations across AI/ML stacks and infrastructure.

Skills

TensorFlow
PyTorch
scikit-learn
XGBoost
Azure AI
AWS SageMaker
Google Vertex AI
Databricks
LLMOps
Spark
SQL
Kubernetes
Docker
MLflow
Kubeflow
Weights & Biases
Python
Git

Tools

Kubernetes
Docker
Prometheus
ELK
Grafana
DataDog

Job description

This role is for one of Weekday’s clients


Min Experience: 12+ years
Location: Mumbai, Maharashtra, India
JobType: full-time

The incumbent shall be responsible for leading AI/ML operational and platform engineering functions across the organization. The focus of this role is to provide and ensure technical excellence in the AI/ML technology landscape and drive the adoption of AI solutions across business units.

Relevant Experience:

  • 10 years’ experience in IT, software engineering, or data science related positions
  • 5 years of direct experience with AI/ML technologies, platforms, and solutions in production environments.
  • 3 years in technical leadership, architecture, or senior engineering role.
  • Experience in Designing and implementing large-scale AI/ML solutions and systems.
  • Experience working with cloud platforms and understanding of cloud-native architectures.
  • Experience with DevOps, CI/CD pipelines, and containerized deployments.

Responsibilities:

  • Deep dive technical investigation, analysis and troubleshooting across AI/ML technology stacks, frameworks, and infrastructure using appropriate diagnostic and monitoring tools.
  • Provide technical leadership and mentoring to AI Engineering, Data Engineering, and Platform teams, fostering a culture of technical excellence and continuous improvement.
  • Drive the enablement of AI/ML platforms, tooling, and best practices across the organization.
  • Provide architecture guidance and technical oversight for AI/ML solution design, implementation, and optimization.
  • Lead the evaluation, selection, and integration of AI/ML tools, frameworks, and cloud services (e.g., Azure AI, AWS SageMaker, Google Vertex AI).
  • Establish and maintain monitoring, logging, and observability standards for AI/ML systems and models.
  • Investigate opportunities for optimization of AI/ML technology stacks, including model performance tuning and infrastructure efficiency.
  • Work with solution architects and business stakeholders to translate business requirements into technical AI/ML solutions.
  • Provide support and enablement for containerized and cloud-native environments, specifically Kubernetes and serverless platforms.
  • Ensure compliance, security, and governance best practices are implemented across all AI/ML solutions.
  • Stay current with emerging AI/ML technologies, frameworks, and industry best practices.

Mandatory Skills:

  • Machine Learning Frameworks (TensorFlow, PyTorch, scikit-learn, XGBoost)
  • AI/ML Platforms (Azure AI, AWS SageMaker, Google Vertex AI, Databricks)
  • Large Language Models and GenAI (transformers, RAG, prompt engineering, LLMOps)
  • Data Processing and Analytics (Spark, Hadoop, pandas, SQL)
  • Cloud Platforms (Azure, AWS, GCP)
  • Container Orchestration (Kubernetes, Docker)
  • MLOps and Model Deployment tools (MLflow, Kubeflow, DVC, Weights & Biases)
  • Data Engineering and ETL tools
  • Monitoring, Logging, and Observability tools (Prometheus, ELK, Grafana, DataDog)
  • Scripting and Programming Languages (Python, Java, Scala, SQL)
  • Git and Version Control Systems
Must-have skills

AI/ML technology, AI/ML operational

Good-to-have skills

Engineering Manager

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