Machine Learning Engineer at Conclase Consulting

Job Overview

Location
Lagos, Lagos
Job Type
Full Time
Date Posted
6 days ago

Additional Details

Job ID
124418
Job Views
28

Job Description






Role Overview




  • We are seeking a skilled and innovative Machine Learning Engineer with expertise in Large Language Models (LLMs) to join our team.

  • The ideal candidate has hands-on experience developing, fine-tuning, and deploying LLMs, alongside a deep understanding of the machine learning lifecycle.

  • This role involves building scalable AI solutions, collaborating with cross-functional teams, and contributing to cutting- edge AI initiatives.



Key Responsibilities




  • Model Development & Optimization:

  • Develop, fine-tune, and deploy LLMs like OpenAI's GPT, Anthropic's Claude, Google’s Gemini, or AWS Bedrock.

  • Customize pre-trained models for specific use cases, ensuring high performance and scalability.

  • Machine Learning Pipeline Design:

  • Build and maintain end-to-end ML pipelines, from data preprocessing to model deployment.

  • Optimize training workflows for efficiency and accuracy.



Integration & Deployment:




  • Work closely with software engineering teams to integrate ML solutions into production environments.

  • Ensure APIs and solutions are scalable and robust.

  • Experimentation & Research:

  • Experiment with new architectures, frameworks, and approaches to improve model performance.

  • Stay updated with advancements in LLMs and generative AI technologies.



Collaboration:




  • Collaborate with cross-functional teams, including data scientists, engineers, and

  • product managers, to align ML solutions with business goals.

  • Provide mentorship to junior team members as needed.



Required Qualifications




  • At least 5 years of professional experience in machine learning or AI development.

  • Proven experience with LLMs and generative AI technologies.



Technical Skills:




  • Proficiency in Python (required) and basic knowledge of Java is needed

  • Hands-on experience with APIs and tools like OpenAI, Anthropic's Claude, Google Gemini, or AWS Bedrock.

  • Familiarity with ML frameworks such as TensorFlow, PyTorch, or Hugging Face.

  • Strong understanding of data structures, algorithms, and distributed systems.



Cloud Expertise:




  • Experience with AWS, GCP, or Azure, including services relevant to ML workloads (e.g., AWS SageMaker, Bedrock).



Data Engineering:




  • Proficiency in handling large-scale datasets and implementing data pipelines.

  • Experience with ETL tools and platforms for efficient data preprocessing.



Problem Solving:




  • Strong analytical and problem-solving skills, with the ability to debug and resolve issues quickly.



Preferred Qualifications




  • Experience with multi-modal models and generative AI for images, text, or other modalities.

  • Understanding of ML Ops principles and tools (e.g., MLflow, Kubeflow).

  • Familiarity with reinforcement learning and its applications in AI.

  • Knowledge of distributed training techniques and tools like Horovod or Ray.

  • Advanced degree (Master’s or Ph.D.) in Computer Science, Machine Learning



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