Data Scientist (Pre-Search)
Responsibilities
- Develop and improve query understanding capabilities for Trendyol's search experience across multiple regions and languages, including spelling correction, query normalization, query rewriting, intent detection, and semantic retrieval.
- Build and evaluate vector search, embedding, and retrieval models that improve the relevance of product discovery for customers across different markets.
- Take a leading role in Arabic-language search initiatives, addressing language-specific challenges such as dialectal variation, orthographic normalization, transliteration, morphology, mixed-language queries, and spelling errors.
- Analyze large-scale structured and unstructured data, including search queries, product content, user interactions, and linguistic signals across the Trendyol ecosystem.
- Design robust offline evaluation methodologies and quality metrics for query understanding, spelling correction, and retrieval systems; validate improvements through online A/B experiments.
- Collaborate closely with Search, Pre-Search, Ranking, Product, and Engineering teams to translate customer and business needs into scalable machine learning solutions.
- Improve model quality, latency, reliability, and deployment cycles by applying MLOps best practices to production ML systems.
- Monitor model and search-quality performance after deployment, investigate regressions, and continuously iterate based on data and user feedback.
- Communicate methodology, findings, and expected business impact clearly to technical and non-technical stakeholders.
Expected Qualifications
- Experience in applied data science and machine learning, ideally in NLP, information retrieval, search, or language modeling domains.
- Professional working proficiency in Arabic, with a strong understanding of Arabic grammar, morphology, spelling conventions, dialectal variation, and common search-query behavior. Native-level proficiency is a strong plus.
- Practical experience with modern NLP methods, including transformer-based language models, text embeddings, semantic search, retrieval, reranking, query understanding, or spelling correction.
- Familiarity with Arabic NLP resources, datasets, tokenization or normalization approaches, and evaluation challenges is highly preferred.
- Strong Python skills and hands-on experience with relevant ML libraries such as PyTorch, TensorFlow, scikit-learn, Hugging Face Transformers, or similar frameworks.
- Strong SQL knowledge and familiarity with data-analysis best practices.
- Experience with vector databases, approximate nearest neighbor search, embedding models, or large-scale retrieval systems is a strong plus.
- Experience designing and interpreting A/B experiments, offline evaluations, and statistical analyses.
- Strong analytical skills, a data-driven mindset, and the ability to work effectively with ambiguous product problems.
- Excellent written and verbal communication skills in English. Turkish is a plus.
- Experience in e-commerce, marketplaces, search, recommendation, or self-service platforms is a plus.
Skills
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