CONXAI has built a no-code, agentic AI platform for the Architecture, Engineering and Construction (AEC) and physical industries, focused on knowledge-automation. We automate high-stakes, knowledge-intensive workflows traditionally trapped in siloed data, fragmented tools and tacit (undocumented) human expertise.
Our multi-agent systems perform complex reasoning in the physical world; and transform bespoke, service-heavy processes into scalable Service-as-a-Software automation.
CONXAI is trusted by some of the leading AEC companies in Europe, US, LATAM and Japan.
Your Role
You bridge the gap between SOTA research and real-world deployments. You are responsible for ensuring Computer Vision models perform reliably when exposed to complex, unstructured customer data.
Core Responsibilities
- Own the Feedback Loop: Monitor production data to identify exactly where and why models struggle in specific customer environments
- Diagnose & Propose: Analyze discrepancies between model output and reality to propose concrete algorithmic or data-driven fixes
- Continuous Validation: Own the "last-mile delivery" by ensuring proper use-case setup and validating the accuracy of final results for the customer
- Drive Data-Centric Improvements: Lead the data "flywheel" by curating specialized datasets and integrating high-value customer data for model retraining
- Operationalize SOTA: Adapt high-level architectures into performant, cost-effective solutions tailored for specific customer use-cases
- Validate for Impact: Design evaluation frameworks that measure true customer value rather than relying solely on standard benchmarks
What We’re Looking For
- Bachelor's / Master's degree in Computer Science (or related) or Civil Engineering with specialization in Data Science / Lean Construction
- Experience with training, and evaluating Deep Learning models in PyTorch
- Positive understanding of basics in machine learning and computer vision, specifically representation lear
📌 Applied ML Engineer (Gurugram)
🏢 Conxai Technologies
📍 Gurugram
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