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NLP Data Scientist

Role overview

Qualifications

  • 4 to 8 years of core data science or advanced machine learning engineering experience
  • 3+ years of dedicated natural language processing (NLP) experience
  • Expert-level technical mastery of Python and deep learning frameworks
  • Mandatory certification: Google Cloud Certified Professional Machine Learning Engineer or AWS Certified Machine Learning - Specialty

Responsibilities

  • Lead LLM fine-tuning initiatives leveraging Parameter-Efficient Fine-Tuning techniques
  • Curate, clean, and structure high-quality training datasets
  • Implement advanced reinforcement learning alignment layers for model safety
  • Optimize model footprint constraints and memory overhead using post-training quantization techniques

Key facts

Hard skills

Other skills

  • Collaboration
  • Problem Solving

About the company

FyerX - Your Trusted Marketing Partner logo

FyerX - Your Trusted Marketing Partner

Digital Marketing & SEO Agencies

We are Digital Marketers with one primary focus. We help you realize improved outcomes from digital marketing strategies and services. Your success with us will be realized in large steps or in small incremental steps. FyerX, Bangalore is run by a passionate team of marketing experts who have devoted their time and expertise to make your business grow in the online world in this technology age. We fuel the growth of purpose driven brands through strategy activation, design empowerment, and market adoption. From cultivating new ideas to connecting the dots for customers or users, these are our core principles. Leverage our expertise to: Improve global online reach & visibility Strengthen local visibility Develop integrated marketing plans Drive growth for your brand online Improve and enhance your online reputation Measure and optimize digital efforts Craft effective digital campaigns Build your digital strategy

Company details

IndustryDigital Marketing & SEO Agencies
Company size11 - 50

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Job description

This is a remote position.

NLP Data Scientist / LLM Fine-Tuning Specialist

Job Details
  • Employment Type: Contract
  • Work Mode: Remote
  • Location: Offshore
  • Total Experience Required: 4 to 8 years
  • Relevant Experience Required: 3+ years of dedicated natural language processing (NLP) and hands-on Large Language Model (LLM) fine-tuning experience
  • Mandatory Certification: Google Cloud Certified Professional Machine Learning Engineer or AWS Certified Machine Learning - Specialty

Job Summary
We are seeking an experienced NLP Data Scientist / LLM Fine-Tuning Specialist to take ownership of our specialized open-source model optimization tracks. The ideal candidate will possess deep expertise in deep learning, dataset preparation, and parameter-efficient training methodologies to fine-tune foundational models for industry-specific terminology, domain-specific reasoning, and custom task execution.

Key Responsibilities
  • Lead LLM fine-tuning initiatives, leveraging Parameter-Efficient Fine-Tuning techniques (PEFT) including LoRA, QLoRA, Prefix Tuning, and Prompt Tuning to optimize open-source architectures (e.g., Llama, Mistral).
  • Curate, clean, and structure high-quality training datasets, implementing automated data deduplication, tokenization schemes, synthetic data generation pipelines, and human-in-the-loop validation frameworks.
  • Implement advanced reinforcement learning alignment layers, configuring Reinforcement Learning from Human Feedback (RLHF) or Direct Preference Optimization (DPO) to enforce model safety, helpfulness, and tone guardrails.
  • Optimize model footprint constraints and memory overhead, applying post-training quantization techniques (e.g., GGUF, AWQ, GPTQ) to minimize parameter degradation and compute budgets.
  • Design rigorous evaluation benchmarks and metrics panels, executing automated validation tests (e.g., BLEU, ROUGE, custom verification matrices) to audit model hallucinations, factual accuracy, and domain alignment.
  • Manage distributed deep learning training jobs, scaling pipeline configurations, tensor parallelism parameters, and gradient checkpointing scripts across multi-GPU compute blocks.
  • Collaborate with MLOps infrastructure teams, formatting completed model weight checkpoints cleanly for scalable cloud deployment and real-time inference serving layers.


Requirements

  • 4 to 8 years of core data science or advanced machine learning engineering experience, with 3+ dedicated years actively training, evaluation, and fine-tuning natural language processing systems.
  • Expert-level technical mastery of Python, deep learning frameworks (PyTorch), transformer architectures (Hugging Face Transformers, Accelerate, PEFT), and vector calculations.
  • Deep structural understanding of attention mechanisms, tokenization constraints, context window degradation behaviors, loss function optimization, and hardware compute limitations (CUDA).
  • Mandatory certification: Professional ML Engineer or Specialty Machine Learning credential from a major cloud vendor (AWS/GCP).

Preferred Qualifications
  • Master’s or Ph.D. in Computer Science, Data Science, Computational Linguistics, or an adjacent quantitative field with a research focus on neural network text models.
  • Prior experience implementing custom embedding model structures or optimizing domain-specific classification layers inside constrained enterprise runtimes.



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MR

Marcus Rivera

Chief Revenue Officer

m.rivera@company.com
linkedin.com/in/marcusrivera
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