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49 Fractal Analytics Jobs

Lead Gen AI Data Scientist - GenAI

1-7 years

₹ 5.5 - 31L/yr (AmbitionBox estimate)

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This is an estimate of the average salary range for this position. It has not been reviewed by the company, and the actual salary may differ.

Mumbai, Pune, Chennai + 2 more

1 vacancy

Lead Gen AI Data Scientist - GenAI

Fractal Analytics

posted 7hr ago

Job Role Insights

Flexible timing

Job Description

Its fun to work in a company where people truly BELIEVE in what they are doing!

Were committed to bringing passion and customer focus to the business.

Job Description

About Fractal

What makes Fractal a GREAT fit for you? When you join Fractal, you ll be part of a fast-growing team that helps our clients leverage AI together with the power of behavioural sciences to make better decisions. We re a strategic analytics partner to most admired fortune 500 companies globally, we help them power every human decision in the enterprise by bringing analytics, AI and behavioural science to the decision.

Our people enjoy a collaborative work environment, exceptional training and career development as well as unlimited growth opportunities. We have a Glassdoor rating of 4 / 5 and achieve customer NPS of 9/ 10. If you like working with a curious, supportive, high-performing team, Fractal is the place for you. close.

Responsibilities:

  • Design and implement advanced solutions utilizing Large Language Models (LLMs).
  • Demonstrate self-driven initiative by taking ownership and creating end-to-end solutions.
  • Conduct research and stay informed about the latest developments in generative AI and LLMs.
  • Develop and maintain code libraries, tools, and frameworks to support generative AI development.
  • Participate in code reviews and contribute to maintaining high code quality standards.
  • Engage in the entire software development lifecycle, from design and testing to deployment and maintenance.
  • Collaborate closely with cross-functional teams to align messaging, contribute to roadmaps, and integrate software into different repositories for core system compatibility.
  • Possess strong analytical and problem-solving skills.
  • Demonstrate excellent communication skills and the ability to work effectively in a team environment.

Primary Skills:

  • Natural Language Processing (NLP): Hands-on experience in use case classification, topic modeling, Q&A and chatbots, search, Document AI, summarization, and content generation.
  • Computer Vision and Audio: Hands-on experience in image classification, object detection, segmentation, image generation, audio, and video analysis.
  • Generative AI: Proficiency with SaaS LLMs, including Lang chain, llama index, vector databases, Prompt engineering (COT, TOT, ReAct, agents). Experience with Azure OpenAI, Google Vertex AI, AWS Bedrock for text/audio/image/video modalities.
  • Familiarity with Open-source LLMs, including tools like TensorFlow/Pytorch and huggingface. Techniques such as quantization, LLM finetuning using PEFT, RLHF, data annotation workflow, and GPU utilization.
  • Cloud: Hands-on experience with cloud platforms such as Azure, AWS, and GCP. Cloud certification is preferred.
  • Application Development: Proficiency in Python, Docker, FastAPI/Django/Flask, and Git.

Tech Skills (10+ Years Experience):

Machine Learning (ML) & Deep Learning:

- Solid understanding of supervised and unsupervised learning.

- Proficiency with deep learning architectures like Transformers, LSTMs, RNNs, etc.

2. Generative AI:

- Hands-on experience with models such as OpenAI GPT4, Anthropic Claude, LLama etc.

- Knowledge of fine-tuning and optimizing large language models (LLMs) for specific tasks.

3. Natural Language Processing (NLP):

- Expertise in NLP techniques, including text preprocessing, tokenization, embeddings, and sentiment analysis.

- Familiarity with NLP tasks such as text classification, summarization, translation, and question-answering.

4. Retrieval-Augmented Generation (RAG):

- In-depth understanding of RAG pipelines, including knowledge retrieval techniques like dense/sparse retrieval.

- Experience integrating generative models with external knowledge bases or databases to augment responses.

5. Data Engineering:

- Ability to build, manage, and optimize data pipelines for feeding large-scale data into AI models.

6. Search and Retrieval Systems:

- Experience with building or integrating search and retrieval systems, leveraging knowledge of Elasticsearch, AI Search, ChromaDB, PGVector etc.

7. Prompt Engineering:

- Expertise in crafting, fine-tuning, and optimizing prompts to improve model output quality and ensure desired results.

- Understanding how to guide large language models (LLMs) to achieve specific outcomes by using different prompt formats, strategies, and constraints.

- Knowledge of techniques like few-shot, zero-shot, and one-shot prompting, as well as using system and user prompts for enhanced model performance.

8. Programming & Libraries:

- Proficiency in Python and libraries such as PyTorch, Hugging Face, etc.

- Knowledge of version control (Git), cloud platforms (AWS, GCP, Azure), and MLOps tools.

9. Database Management:

- Experience working with SQL and NoSQL databases, as well as vector databases

10. APIs & Integration:

- Ability to work with RESTful APIs and integrate generative models into applications.

11. Evaluation & Benchmarking:

- Strong understanding of metrics and evaluation techniques for generative models.

If you like wild growth and working with happy, enthusiastic over-achievers, youll enjoy your career with us!

Not the right fit? Let us know youre interested in a future opportunity by clicking Introduce Yourself in the top-right corner of the page or create an account to set up email alerts as new job postings become available that meet your interest!


Employment Type: Full Time, Permanent

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Fractal Analytics Interview Questions & Tips

Prepare for Fractal Analytics Data Scientist roles with real interview advice

Top Fractal Analytics Data Scientist Interview Questions

Q1. 1. Describe one of your projects in detail. 2. Explain Random Forest and other ML models 3. Statistics
Q2. Explain Transformers how different from previous RNN, LSTM etc.
Q3. What are different types of Attention?
View all 10 questions

What people at Fractal Analytics are saying

4.1
 Rating based on 51 Data Scientist reviews

Likes

If you are lucky, you will get good work where you will able to learn a lot under expert people in that field

  • Salary - Good
  • +3 more
Dislikes

Too much politics in terms of giving promotion, bad hiring by HR in last 3 years

  • Promotions - Poor
  • +1 more
Read 51 Data Scientist reviews

Data Scientist salary at Fractal Analytics

reported by 448 employees with 1-7 years exp.
₹8.4 L/yr - ₹33 L/yr
33% more than the average Data Scientist Salary in India
View more details

What Fractal Analytics employees are saying about work life

based on 770 employees
94%
97%
85%
88%
Flexible timing
Monday to Friday
No travel
Day Shift
View more insights

Fractal Analytics Benefits

Work From Home
Free Food
Cafeteria
Health Insurance
Soft Skill Training
Job Training +6 more
View more benefits

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Fractal Analytics Mumbai Office Locations

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Mumbai Office
Fractal Analytics, #701 & 702, 7th Floor, Silver Metropolis, Western Express Highway, Opp Bimbisar Nagar, Goregaon East Mumbai
Maharashtra 400063
Mumbai Office
Fractal Analytics Pvt. Ltd., 101 Raheja Titanium Off Western Express Highway, Goregaon East, Mumbai Mumbai
400 063

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