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Architect - Artificial Intelligence

WAISL Limited

2 - 5 years

Delhi

Posted: 12/03/2026

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Job Description

Required Skills

  • Proficient in multiple machine learning (ML) and deep learning (DL) frameworks such as TensorFlow and PyTorch, along with expertise in programming languages like Python, R, SQL, Scala, and Julia.
  • Demonstrated proficiency in deploying Large Language Models (LLM) and Generative AI applications, with knowledge of techniques like Prompt Engineering Fine-Tuning (PEFT) and Retrieval-Augmented Generation (RAG).
  • Experience in developing and deploying deep neural networks and ML models for intricate tasks.
  • Develop and construct platforms and tools tailored for Responsible AI principles such as fairness, security, and explainability across various model types (ML/DL/LLMs), data formats, and lifecycle stages.
  • Implement solutions and methodologies within existing AI projects to serve as safeguards against diverse model vulnerabilities, including toxicity and adversarial attacks.
  • Collaborate with business analysts, engineers, and stakeholders to ensure alignment of data science initiatives with Responsible AI principles.
  • Assist in devising and executing rigorous adversarial testing protocols for AI models to uphold Responsible AI standards.
  • Explore cutting-edge techniques, architectures, and methodologies to automate adherence to Responsible AI practices throughout the AI lifecycle, spanning from data preparation to model deployment and inferencing.
  • Establish monitoring systems to track model performance over time and institute mechanisms for regular model updates and maintenance.
  • Share insights and expertise across the organization to foster thought leadership and innovative strategies for addressing various aspects of Responsible AI.
  • Knowledge of architectural design patterns, performance tuning, database, and functional designs.
  • Hands-on experience in Service Oriented Architecture.
  • Ability to lead solution development and delivery for the design solutions.


Qualification & Technical Skills

  • Bachelors or masters degree in computer science, Artificial Intelligence, or a related field.
  • Experience working as an AI Technical Lead or Architect, working knowledge of machine learning, deep learning, and natural language processing (NLP) techniques.
  • Proficiency in programming languages such as Python, Java, or C++, and familiarity with popular AI libraries and frameworks (e.g., TensorFlow, PyTorch, Keras).
  • Experience in designing and implementing large-scale AI solutions, including data ingestion, storage, processing, and deployment.
  • Good understanding of cloud computing platforms (e.g., AWS, Azure, Google Cloud) and experience deploying AI models on these platforms.
  • Excellent problem-solving and analytical skills, with the ability to break down complex problems into actionable components.
  • Strong communication and teamwork skills, with the ability to work effectively within multi-functional teams.
  • Ability to stay updated with the latest advancements in AI technologies, frameworks, and platforms.
  • Knowledge of ethical considerations and responsible AI practices is a plus.



Key Responsibilities

  • Collaborate with Business / Practice Units, Relevant Stakeholders and Customers to understand business goals and determine AI requirements.
  • Design and develop AI architectures, frameworks, and algorithms that can support large-scale and sophisticated AI solutions.
  • Evaluate and select appropriate AI technologies, tools, and frameworks to achieve desired performance, accuracy, and scalability.
  • Own the development and implementation of AI models, ensuring consistency to standard processes in machine learning and deep learning.
  • Develop and maintain AI pipelines, incorporating data cleaning, pre-processing, feature engineering, model training, and validation processes.
  • Conduct regular code reviews and provide technical guidance to junior members of the team.
  • Stay up to date with the latest advancements in AI technologies, frameworks, and algorithms, and find opportunities for their application in the organization.
  • Collaborate with infrastructure teams to ensure smooth deployment and monitoring of AI models in production environments.
  • Document AI architectures, design decisions, and technical specifications for reference and knowledge sharing.

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