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Sunset

Sunset

Guides venture-backed startups through dissolution

Machine Learning Engineer

Full-Time
No salary listed
Mid
New York, NY, USA
In Person

About the job

Requirements
  • At least 3 years of professional machine learning or software engineering experience, including improving models in production.
  • Experience moving model quality through error analysis, data work, experimentation, implementation, deployment, and iteration.
  • Strong grasp of precision, recall, F1, calibration, thresholding, class imbalance, imperfect labels, distribution shift, and representative evaluation.
  • Strong Python and software engineering skills, with the ability to work inside data pipelines and production systems.
  • Ability to combine deterministic, statistical, neural, and large language model-based approaches based on the problem.
  • Ability to communicate uncertainty and tradeoffs clearly to scientists, engineers, and people making delivery or risk decisions.
Responsibilities
  • Own and improve named-entity recognition, entity resolution, structured or tabular detection, document understanding, semantic review, or related de-identification systems.
  • Transform model failures and capability ceilings into a prioritized improvement roadmap.
  • Design active-learning loops that combine model sweeps, large language model-assisted review, clustering, and uncertainty signals to identify examples worth hand-labeling.
  • Build representative datasets and benchmarks, and use decision-relevant metrics to reveal strengths, weaknesses, uncertainty, and failure costs.
  • Choose and combine deterministic rules, classical machine learning, fine-tuning, embeddings, multimodal models, and large language model-based approaches based on the problem and evidence.
  • Design experiments, tune thresholds, analyze precision-recall and utility tradeoffs, and explain which changes are real, uncertain, or condition-specific.
  • Productionize improvements with reproducible artifacts, evaluation evidence, runtime instrumentation, and safe rollout.
  • Optimize inference cost, latency, and throughput without hiding regressions in quality or high-risk recall.
  • Build high-fidelity evaluation environments with seeded failure modes and programmatic verifiers that expose subtle regressions.
  • Build reliable model- or agent-based harnesses with bounded behavior and explicit output verification when appropriate.
  • Partner with Applied Science on measurement and calibration, Data and Product Engineering on pipeline and review systems, and Security and Quality on acceptable risk.
  • Use artificial intelligence engineering tools to accelerate research, implementation, error analysis, and evaluation while verifying their output.
Desired Qualifications
  • Startup experience and comfort with broad ownership in evolving or incomplete requirements.
  • Experience with named-entity recognition, entity resolution, information extraction, document understanding, multimodal systems, or privacy-preserving machine learning.
  • Experience with hyperparameter tuning, data augmentation, model merging, ensembles, knowledge distillation, or multimodal model training.
  • Experience fine-tuning or adapting transformer, GLiNER, embedding, vision-language, or small specialized models.
  • Experience with active learning, uncertainty sampling, weak supervision, human-in-the-loop review, or large language model-assisted evaluation pipelines.
  • Experience building goldens, adversarial corpora, replay systems, model bakeoffs, agentic harnesses, or programmatic evaluation environments.
  • Experience with difficult machine learning or labeling problems.
  • Experience with ONNX Runtime, TensorRT, model pruning, quantization, or other CPU/GPU inference optimization.
  • Experience with sensitive enterprise data or other high-trust production systems.
  • Experience with synthetic data generation and managing the synthetic-to-real gap.

About the company

Sunset provides business dissolution consulting aimed at venture-backed tech startups that are winding down. It offers an end-to-end service package including due diligence, legal and accounting support, and assistance with asset sales. The model is fee-for-service, charging clients for the specific services they need. Sunset works by coordinating a team of specialists to manage the dissolution process, helping founders and investors save time and money while handling compliance, asset liquidation, and other closing activities. Distinguishing factors include its specialization in startup shutdowns for venture-backed companies and the integration of legal, financial, and transactional services under one roof to streamline the process. The company’s goal is to help clients wind down operations efficiently, reducing time, effort, and costs associated with dissolution.

Company Size

51-200

Company Stage

Seed

Total Funding

$1.5M

Headquarters

New York City, New York

Founded

2023

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Simplify's Take

What believers are saying

  • TechCrunch reported Sunset raised $1.45 million in February 2024, validating investor demand.
  • Sunset claims hundreds of wind-downs by 2026, signaling repeatable operational execution.
  • Acquire.com referrals create a steady funnel from acquisitions and acqui-hires into shutdowns.

What critics are saying

  • SimpleClosure raised $15 million in May 2025, outspending Sunset on automation.
  • Law firms and accounting firms already own dissolution workflows and client relationships.
  • If shutdown volume stalls, Sunset's referral-led model and narrow niche cap growth.

What makes Sunset unique

  • Sunset specializes in VC-backed startup wind-downs, not generic law-firm closings.
  • Its one-team model bundles attorneys, CPAs, and client success under one fee.
  • Acquire.com partnership targets post-sale stay-behind entities, a narrow and valuable niche.

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Benefits

Health Insurance

Dental Insurance

Vision Insurance

Unlimited Paid Time Off

Gym Membership

Company News

X Corp.
Mar 5th, 2024
Brendan Mahony on Twitter / X

"Sunset announced it has raised $1.45 million in seed funding to make the process of closing a company more affordable, quicker and less complicated."Thanks so much @bayareawriter for the incredible writeup on Sunset's recent fundraise and the ecosystem as a whole.…— Brendan Mahony (@bmaho2211) February 28, 2024

TechCrunch
Feb 27th, 2024
Why VCs are investing in startups that help other startups shut down

Earlier this month, equity management startup Carta revealed that it was getting into the game as well with a new offering called Carta Conclusions.