Data Scientist ADAS Analytics Machine Learning
Job Responsibilities:
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Apply vision-language models to SSR video and combine video analysis with structured telemetry to create multimodal event representations.
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Build LLM classification and reasoning pipelines that triage events by severity and root cause and generate human-readable summaries of takeovers, safety events, and deactivations.
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Design embedding pipelines and semantic search for similar-event retrieval, and develop unsupervised clustering methods that discover recurring scenarios and edge-case families at fleet scale.
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Build model-based ranking and scoring systems that reduce manual event triage, develop active-learning loops using engineer feedback, and proactively detect fleet-level anomalies.
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Quantify the impact of firmware updates and configuration changes on KPIs, segment driver cohorts, and design A/B and quasi-experimental frameworks.
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Analyze campaign effectiveness, build coverage-optimization models, and develop automated fleet-quality scoring.
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Deploy models into PySpark and Delta Lake pipelines and the FastAPI analytics API, build evaluation frameworks for foundation-model outputs, and operate on the Azure data platform, including ADLS, Synapse, and Container Apps.
Minimum Qualifications:
Preferred Qualifications:
Strongly Preferred
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LLM or VLM application experience, including prompt engineering, structured outputs, and evaluation.
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Embedding models and vector similarity for retrieval or clustering.
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PySpark for large-scale processing; candidates with strong pandas experience may ramp up.
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Time-series analysis or anomaly detection.
Nice to Have
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Multimodal foundation models applied to video or image data.
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RAG or vector-database systems such as FAISS, pgvector, or Pinecone.
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Spatial or geospatial clustering with DBSCAN or HDBSCAN.
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Ranking or recommendation systems, active learning, PyTorch, or TensorFlow.
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Delta Lake or Parquet; FastAPI or model-serving APIs; MLOps platforms such as MLflow or Weights & Biases.
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Cloud-platform experience in Azure, AWS, or GCP.
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Vehicle telemetry or automotive-domain experience; campaign analytics or A/B testing at scale.
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Data privacy, including CCPA or GDPR, for vehicle data and foundation models.
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English required; German is an advantage.
About the Company
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