Lead AI Systems Architect (Data-Centric AI & Multimodal)
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- Probably Worldwide
- Work type
- Remote
- Posted
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About Us
Founded in 2018, AWISEE is a global digital marketing agency specializing in SEO, Digital PR, and KOL & Influencer Marketing. We help brands enter new markets or expand within existing ones, combining short-term visibility strategies and long-term growth solutions to drive impactful, measurable results.
Global Reach & Industry Expertise Operating across Europe, North America, Asia, and the Middle East, AWISEE tailors strategies to each market for cultural fit and compliance. We specialize in Tech & SaaS, Fintech, E-commerce, Crypto, iGaming, Travel - driving impactful growth worldwide.
Job Description
This is a remote position.
We are building a an AI & Data Lab focused on social media intelligence and influencer marketing data. We are seeking a Lead AI Systems Architect to design and scale our automated classification, enrichment, and multimodal AI pipelines. You will take raw, unstructured social content (short-form video, audio, captions, and visual metadata) and convert it into high-precision structured data products.
Responsibilities
- Design & Build Multimodal AI Pipelines: Combine Computer Vision (scene classification, aesthetic scoring), Speech-to-Text (Whisper), and LLMs into automated ingestion workflows.
- Structured Data Extraction: Implement programmatic extraction frameworks (Instructor, Pydantic, DSPy, Outlines) to enforce strict, validated JSON outputs from generative models.
- Model Optimization & Cost Control: Transition workloads from commercial APIs to fine-tuned open-source models (Llama 3/4, Qwen, DeepSeek) running on local inference engines (vLLM, TGI, Groq).
- Programmatic Labeling & Quality Control: Deploy data-centric AI frameworks (Cleanlab, Snorkel, Active Learning) to automate millions of labels and clean noisy datasets.
- Technical Leadership: Guide junior developers, establish engineering best practices, and set architectural roadmaps for data enrichment.
Requirements
- 5+ years of experience in Applied AI, Natural Language Processing, or Computer Vision.
- Proven experience building multimodal pipelines integrating vision, speech, and text models.
- Mastery of Python, PyTorch/TensorFlow, and production LLM orchestration tools (DSPy, Instructor, Pydantic, LangChain/LlamaIndex).
- Hands-on experience fine-tuning and serving open-source models using vLLM, TGI, or similar high-throughput inference engines.
- Experience with vector databases (Qdrant, pgvector, Pinecone) and RAG architectures at scale.
Preferred Qualifications
- Prior experience with social media data pipelines (TikTok, Instagram Reels, YouTube Shorts).
- Background in data-centric AI, active learning, or synthetic data generation.