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AI/ML
  • Posted 10 hours ago
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Job Description

Good to have skills: MLOps, Model Monitoring & Drift Detection, Feature Store, A/B Testing & Experimentation, Data Engineering Pipelines

Key Responsibilities: Technical Leadership & Delivery

  • Lead end-to-end AI/ML initiatives, translating business goals into model strategies, milestones, and measurable success metrics.
  • Provide technical direction on model selection, training approaches, evaluation frameworks, and deployment patterns for production-grade ML systems.
  • Mentor and guide ML engineers and data scientists through design reviews, code reviews, and model performance deep-dives.
  • Drive engineering excellence by defining standards for reproducibility, experimentation tracking, documentation, and model governance. Model Development (AI/ML, NLP, Data Learning)
  • Build and optimize machine learning models using structured and unstructured data, ensuring robustness, generalization, and interpretability where needed.
  • Design and implement NLP pipelines for tasks such as text classification, entity extraction, semantic search, summarization, or intent detection based on product needs.
  • Partner with data stakeholders to improve data learning workflows: data quality checks, feature engineering, labeling strategies, and feedback loops.
  • Establish model evaluation practices including offline metrics, error analysis, bias checks, and A/B testing where applicable. Collaboration & Stakeholder Management
  • Collaborate with product and engineering teams to align model capabilities with user experience, latency, scalability, and reliability requirements.
  • Communicate technical trade-offs and model outcomes clearly to both technical and non-technical stakeholders.
  • Identify risks early (data drift, model decay, dependency gaps) and drive mitigation plans to ensure stable delivery. Minimum Qualifications:
  • 5–9 years of overall experience with strong hands-on ownership of AI/ML solution delivery in real-world environments.
  • Strong expertise in AI/ML including model development, training, evaluation, and iterative improvement.
  • Solid experience in NLP and applied learning from data (data learning workflows, feature engineering, and experimentation).
  • Ability to lead technical discussions, mentor team members, and drive execution across multiple workstreams.
  • Education: BTECH, MTECH, MCA, MSC (or equivalent). Preferred Qualifications:
  • Proven experience leading production ML deployments, including monitoring, retraining strategies, and performance optimization over time.
  • Strong understanding of modern NLP approaches (transformer-based modeling, embeddings, prompt-based workflows) and how to evaluate them reliably.
  • Experience designing scalable ML architectures and collaborating closely with platform/engineering teams to operationalize models.
  • Demonstrated ability to define best practices for experimentation, versioning, and model governance across teams.
  • Track record of delivering measurable business impact through ML initiatives and influencing stakeholders with data-backed recommendations.

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Key Skills

Feature Engineering

Drift Detection

Feature Store

Model Evaluation

About Company

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