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Multiplier AI Limited

Multiplier AI Limited

AI Lead / Data & AI Enablement Lead

Hyderabad, Noida, INVor OrtUnbefristetVollzeit

Veröffentlicht am 24. Sept. 2026

Diese Stelle wird in EN ausgeschrieben

We are looking for an experienced AI Lead / Data and Artificial Intelligence Enablement Lead to identify high-value artificial intelligence opportunities, recommend suitable solution approaches, and enable data and engineering teams to adopt artificial intelligence capabilities.

The role involves working across generative artificial intelligence, retrieval-augmented generation, artificial intelligence agents, traditional machine learning, predictive modelling, and intelligent automation. The candidate will be responsible for converting business opportunities into secure, scalable, measurable, and production-ready solutions.

Major Responsibilities

  • Partner with business, data, and technology teams to identify and prioritise artificial intelligence use cases.

  • Evaluate whether rules, analytics, traditional machine learning, retrieval-augmented generation, generative artificial intelligence, or automation is the most suitable solution.

  • Define artificial intelligence architectures, technology selections, delivery approaches, and implementation roadmaps.

  • Lead the design and delivery of retrieval-augmented generation solutions, including document processing, chunking, embeddings, vector search, retrieval, re-ranking, and grounded response generation.

  • Guide predictive modelling initiatives involving classification, regression, forecasting, anomaly detection, recommendations, and optimization.

  • Assess managed models, open-source models, fine-tuning approaches, and custom modelling solutions.

  • Develop secure integrations between artificial intelligence services, enterprise data platforms, applications, and business workflows.

  • Establish evaluation frameworks to measure model quality, retrieval relevance, hallucination, accuracy, latency, cost, and business value.



Requirements


  • Significant experience delivering artificial intelligence, machine learning, or advanced analytics solutions in production environments.

  • Strong understanding of the complete artificial intelligence lifecycle, from problem definition and data preparation to evaluation, deployment, and monitoring.

  • Practical experience implementing retrieval-augmented generation solutions.

  • Strong knowledge of large language models, embeddings, vector databases, retrieval, re-ranking, prompt engineering, and model evaluation.

  • Strong programming skills in Python and SQL.

  • Experience with common data science and machine learning libraries.

  • Knowledge of modern cloud data platforms such as Snowflake and Databricks.

  • Experience developing structured, semi-structured, and unstructured data pipelines.

  • Experience integrating artificial intelligence solutions through application programming interfaces, applications, and enterprise workflows.

  • Knowledge of machine learning operations, large language model operations, continuous integration and continuous delivery, experiment tracking, model registries, and production monitoring.



Benefits


  • Professional growth and career development in artificial intelligence and machine learning.

  • Opportunities to work on generative artificial intelligence, predictive modeling, and intelligent automation solutions.

  • Exposure to artificial intelligence architecture, experimentation, and production implementation.

  • Collaboration with business, data engineering, and technology teams.

  • Opportunity to develop reusable artificial intelligence architectures, frameworks, and engineering patterns.

  • Experience in responsible artificial intelligence, governance, security, and regulatory compliance.

  • Opportunities to coach teams and build organizational artificial intelligence capabilities.

  • Exposure to modern cloud data platforms and enterprise artificial intelligence technologies.



Rollenübersicht

Jobart

Vollzeit

Erforderliche Kompetenzen

AI Use Case Identification & PrioritizationAI Solution Evaluation (rules, analytics, traditional ML, RAG, generative AI, automation)AI Architecture & Technology SelectionRetrieval-Augmented Generation (RAG) Design & Implementation (document processing, chunking, embeddings, retrieval, re-ranking, grounded response)Predictive Modelling & Traditional Machine Learning (classification, regression, forecasting, anomaly detection, recommendations, optimization)Model Selection & Fine-tuning (managed models, open-source models, custom modelling)Python ProgrammingSQLEmbeddings & Vector Databases / Vector SearchMLOps & LLM Operations (CI/CD, experiment tracking, model registries, production monitoring)Data Engineering & Pipeline Development (structured, semi-structured, unstructured data pipelines)AI Integration & API Development (secure integrations with enterprise data platforms, applications, workflows)Model Evaluation & Metrics Frameworks (accuracy, relevance, hallucination, latency, cost, business value)Responsible AI, Governance, Security & Regulatory ComplianceTeam Leadership, Coaching & Organizational AI Enablement

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