Senior Search Engineer - Services Special Projects - Jobs - Careers at Apple
- Design, build, and maintain large-scale, low-latency, high-performance search systems that can scale.
- Develop and optimize ranking, relevance, and retrieval through ML/AI models and merging traditional keyword search with vector-based semantic search using embedding models and vector databases.
- Develop sophisticated NLP pipelines for intent classification, entity extraction, semantic parsing, and query expansion.
- Merge traditional keyword search (BM25) with vector-based semantic search using embedding models and vector databases.
- Design and Implement machine learning models (e.g. Learning to Rank, Cross Encoder based models) and multi-stage reranking algorithms to optimize search precision and recall.
- Build offline and online evaluation metrics, A/B testing frameworks, and continuous improvement strategies for search quality
- Partner with Research Scientists, Product, Data Engineering, MLOps, Search Infrastructure teams, and UX to align search features with business and user goals.
- Stay current with the latest research and innovations in search and information retrieval technologies, translating them into scalable production systems.
- Bachelor's or Master's degree in Computer Science, Machine Learning, Statistics, or a related field
- 10+ years of experience in Machine Learning, Data Science, or Software Engineering roles with a significant focus on search infrastructure and information retrieval.
- Hands on experience building and deploying large-scale search systems in production.
- Deep understanding of information retrieval, query understanding, query augmentation and multi-stage ranking algorithms
- Strong foundation in deep learning architectures for search and retrieval (e.g., transformers, cross encoder models, graph neural networks, learned sparse representations).
- Experience with to multi-objective optimization in search systems (e.g., relevance, diversity, freshness, fairness).
- Experience with real-time systems, user feedback loops, and model retraining pipelines.
- Strong proficiency in Go, Java, C++ and Python
- Proven experience with ML frameworks including PyTorch, XGBoost.
- Familiarity with cloud environments (including AWS) and containerization (Docker, Kubernetes)
- Extensive experience working with data processing pipelines including Spark, Flink
- Hands-on experience with vector search including FAISS
- Familiarity with streaming platforms including Apache Kafka
- Experience with search infrastructure including OpenSearch, and/or Elasticsearch
- Hands-on experience deploying, serving, and optimizing LLMs, Embeddings and ML models directly in the production query/request path
- Past successful deployments with tuning of models (including quantization) for performance and quality optimization
- Excellent communication skills and a collaborative mindset
- Master's Degree; PhD Preferred
- Published work or patents in the domain of search systems, information retrieval, or related ML fields.
- Experience with graph databases such as TigerGraph
- Experience with data and model versioning tools and practices (e.g., DVC, MLflow, Weights & Biases)
- Deep Experience with KV Stores including SSTables and Cassandra
- Experience with tuning KV-cache and batching for low-latency, high-throughput real-time inference.
- Deep production level experience with inference runtimes/compilers (ONNX Runtime, TensorRT/TensorRT-LLM), and serving frameworks (vLLM, SGLang or Triton, TorchServe ) .
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Required Skills
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🇬🇧 English