Posted on: 01/05/2026
Looking for candidates with strong experience in Machine Learning, Python, GCP, Pricing models, LLM/RAG and MLOPS.
Experience : 5 to 8 years
Notice period : immediate to 30 days
Education : B.E/B.Tech or M.Sc/MCA/M.Tech
KEY RESPONSIBILITIES :
ML Development & Deployment :
- Design, develop and deploy production-grade ML models for dynamic pricing, personalised price and product recommendation engines, automated property valuation, rent and occupancy prediction models, sentiment evaluation
- Develop algorithms to analyse pricing anomalies and respond to real-time supply-demand data and create an impact on revenue management
- Identify micro-location factors driving rental growth and build models for automated price setting
- Develop computer vision models for property image analysis, floor plan processing, and automated
condition assessment
MLOps & Infrastructure :
- Build robust MLOps pipelines model training, versioning, CI/CD, monitoring, and drift detection
- Implement model monitoring for performance degradation and data quality issues
- Optimise model performance for latency, throughput, and cost efficiency in production
- Collaborate closely with UK and Europe teams to translate business problems into ML solutions
REQUIRED TECHNICAL SKILLS :
Python :
- Expert-level; production-quality code; strong software engineering fundamentals
ML Frameworks :
- Deep expertise in PyTorch or TensorFlow; hands-on proficiency in scikit-learn, XGBoost, LightGBM
AI for model fine-tuning :
- Exposure to an AI-enabled environment for model buildingand fine-tuning
MLOps :
- MLflow or Weights & Biases; model versioning, A/B testing, drift monitoring in production
Cloud :
- Proficiency on any major cloud platform (AWS, Azure, or GCP) for ML deployment
Containerisation :
- Docker and Kubernetes for model deployment and CI/CD pipelines
Dynamic Pricing :
- Proven capability in building dynamic pricing models eg in e-commerce, retail, travel, hospitality, financial products
IDEAL CANDIDATE PROFILE :
- 3+ years deploying ML models in live production environments (not just training or PoC)
- Track record of model serving at 10,000+ predictions/day with sub-100ms latency
- Proven ability in building dynamic pricing models or recommendation engines is a pre-requisite
- Experience in NLP/Document AI, Computer Vision, Time Series and trend Forecasting
- Background in finance, retail or e-commerce domains is a strong advantage
- Interest in playing a leadership role and mentoring junior team members as the team grows
Education :
UG : B.Tech / B.E. in Any Specialization
PG : MCA in Any Specialization, MS/M.Sc(Science) in Any Specialization, M.Tech in Any Specialization
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