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Se connecterRésumé du poste
- Lieu
- Nasr City, Égypte
- Mode de travail
- Hybride
- Type de contrat
- Temps plein
- Date de publication
- 5 oct. 2026
- Dernière vérification à la source
- 7 oct. 2026
- Source de l'offre
- via Workable
Missions
• Lead the entire ML lifecycle from data collection and analysis to model deployment, monitoring, and optimization.
• Apply deep learning and NLP techniques to develop solutions, potentially enhancing systems like search or recommendation engines.
• Design and implement end-to-end ML pipelines, incorporating MLOps best practices for CI/CD, containerization (Docker, Kubernetes), and cloud deployment (AWS, GCP, Azure).
• Utilize LLM knowledge, including prompt engineering and fine-tuning, to build advanced generative AI applications and conversational AI solutions.
• Perform comprehensive data analytics, including statistical analysis and feature engineering, to inform model development and extract actionable insights from large datasets.
• Write production-quality, robust code in Python (and potentially other languages like Java or Scala), ensuring code quality through reviews and testing.
• Collaborate with cross-functional teams, including data scientists, data engineers, and product managers, to translate business requirements into technical ML solutions.
Profil recherché
Required Skills and Qualifications
• Proven experience as a Machine Learning Engineer with a strong portfolio of deployed production models.
• Proficiency in Python and relevant ML frameworks/libraries (e.g., TensorFlow, PyTorch, scikit-learn).
• Expertise in data science methodologies, statistical analysis, and data analytics.
• Hands-on experience with MLOps tools and practices for managing the ML application lifecycle.
• Strong understanding of NLP and experience with LLMs and prompt engineering techniques.
• Solid software engineering background with knowledge of data structures, algorithms, and system design.
• Excellent problem-solving, communication, and collaboration skills.
Compétences
- Python
- Java
- Scala
- Machine Learning
- Deep Learning
- Data Analysis
- Data Science
- NLP
- LLMs
- TensorFlow
- PyTorch
- scikit-learn
- AWS
- Azure
- Google Cloud
- Docker
- Kubernetes
- CI/CD
- Communication
- Problem Solving
Visa et relocalisation
?L'annonce ne parle pas de visa. Vérifiez l'annonce d'origine ou demandez à l'entreprise.
?L'annonce ne mentionne pas de relocalisation.
Description du poste
Key Responsibilities
• Lead the entire ML lifecycle from data collection and analysis to model deployment, monitoring, and optimization.
• Apply deep learning and NLP techniques to develop solutions, potentially enhancing systems like search or recommendation engines.
• Design and implement end-to-end ML pipelines, incorporating MLOps best practices for CI/CD, containerization (Docker, Kubernetes), and cloud deployment (AWS, GCP, Azure).
• Utilize LLM knowledge, including prompt engineering and fine-tuning, to build advanced generative AI applications and conversational AI solutions.
• Perform comprehensive data analytics, including statistical analysis and feature engineering, to inform model development and extract actionable insights from large datasets.
• Write production-quality, robust code in Python (and potentially other languages like Java or Scala), ensuring code quality through reviews and testing.
• Collaborate with cross-functional teams, including data scientists, data engineers, and product managers, to translate business requirements into technical ML solutions.
Required Skills and Qualifications
• Proven experience as a Machine Learning Engineer with a strong portfolio of deployed production models.
• Proficiency in Python and relevant ML frameworks/libraries (e.g., TensorFlow, PyTorch, scikit-learn).
• Expertise in data science methodologies, statistical analysis, and data analytics.
• Hands-on experience with MLOps tools and practices for managing the ML application lifecycle.
• Strong understanding of NLP and experience with LLMs and prompt engineering techniques.
• Solid software engineering background with knowledge of data structures, algorithms, and system design.
• Excellent problem-solving, communication, and collaboration skills.
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