About Ali
English
Native or bilingual
Experience
- JMAN GroupSenior AI Engineer | Customer Analytics & Personalisation NLP-LLM PipelineDecember 2025 - February 2026 (2 months)
- Built End-to-End Pipeline: Developed a customer analytics pipeline for multilingual European markets (call transcripts, chat, and voice logs) to enable data-driven segmentation and personalised service strategies.
- Advanced NLP Workflows: Developed BERTopic workflows using HDBSCAN clustering and UMAP to identify distinct customer segments and sentiment patterns.
- LLM Integration: Orchestrated GPT-4o-mini for multilingual translation and hierarchical topic labeling.
- Cost Efficiency: Reduced API costs by 50% through intelligent batching and optimised processing.
- Semantic Analysis: Engineered memory-optimised multilingual embeddings for processing large (GB+) datasets.
- Production Engineering: Designed a YAML-based config-driven architecture for rapid experimentation and implemented comprehensive logging and monitoring.
- PropTech & Geospatial IntelligenceStartup PropTech - AI EngineerOctober 2025 - December 2025 (2 months)
- Architected and developed a production-ready multi-agent AI orchestration platform using LangGraph and LangChain to automate property development due diligence workflows, reducing manual analysis time by 85% and enabling scalable batch processing of land title assessments.
- AI Agent Development & Orchestration: Designed and implemented a modular multi-agent system with 7 specialised AI agents (Legal Due Diligence, Planning & Regulatory Compliance, Flood Risk Assessment, Protected Land Analysis) using LangGraph state machine architecture with gate-based workflows, conditional branching, and early stopping logic to optimize computational efficiency.
- Workflow Automation: Built config-driven agent architecture with YAML-based configuration management, enabling dynamic agent behavior modification without code changes. Implemented advanced workflow automation with state persistence, error recovery mechanisms, and comprehensive audit trails for production reliability
- Technical Implementation: Engineered memory-efficient chunked processing for large-scale spatial datasets (GB+), implementing row-group-based Parquet processing with progress tracking, reducing memory footprint by 90% while maintaining sub-minute processing times. Integrated multiple government data sources (Historic England, Environment Agency, Natural England) with 400K+ spatial features, converting datasets to optimised Parquet format achieving 67% file size reduction and 5-10x faster query performance.
- Production Engineering: Created batch processing capabilities with CLI interface supporting single-title, batch-file, and interactive modes, enabling processing of hundreds of titles with comprehensive error tracking. Established modular architecture with shared common utilities, reducing code duplication by 60% and enabling rapid agent development.
- HarnhamGlobal Data & AI recruitment specialistsAugust 2025 - October 2025 (2 months)
- Architected and implemented a modular data pipeline to handle end-to-end processing of complex sales data for global FMCG clients, which is a critical first step for any large-scale AI/ML initiative.
- Utilized the Polars library and its LazyFrame API to build a memory-efficient and performant data processing engine, optimising the handling of large datasets often required for training and fine-tuning AI models.
- Championed advanced data engineering principles to create a robust, production-ready solution. The modular design, comprehensive error handling, and use of configurable settings ensure the pipeline is reliable and easy to maintain.
- Implemented extensive unit and integration testing with pytest, leveraging fixtures and parametrisation to validate complex data transformations, edge cases, and error scenarios, maintaining high code quality and reliability standards.
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Education
- MPhilUniversity of Cambridge, Emmanuel College2017MPhil
- BEngUniversity of Southampton2016BEng