Key takeaways: SNX is the native token for the Synthetix Network and is used for governance. It is listed on top exchanges like Binance, Uniswap, Coinbase, OKX,Key takeaways: SNX is the native token for the Synthetix Network and is used for governance. It is listed on top exchanges like Binance, Uniswap, Coinbase, OKX,

SNX price prediction 2026-2032: Is SNX a good investment?

Key takeaways:

  • The average SNX price prediction for 2026 is $0.800376.
  • In 2028, it will range between $1.42 and $1.69, with an average price of $1.56.
  • In 2032, it will range between $3.20 and $3.47, with an average price of $3.33.

SNX is the native token for the Synthetix Network and is used for governance. It is listed on top exchanges like Binance, Uniswap, Coinbase, OKX, and Bybit. Synthetic is a decentralized protocol that allows you to create and transact synthetic tokens on the Ethereum blockchain.

Is SNX a good investment? Will it go up? Where will it be in five years? Let’s get into the SNX price prediction and technical analysis.

Overview

CryptocurrencySynthetix
AbbreviationSNX
Current Price$0.452 (-2.31%)
Market Cap$157.09M
Trading Volume (24-hour)$26.99M
Circulating Supply343.46M SNX
All-time High$28.77 (Feb 14, 2021)
All-time Low$0.03258 (Jan 5, 2019)
24-hour High$0.4671
24-hour Low$0.4414

SNX price prediction: Technical analysis

MetricValue
Price Prediction $0.4474 (-2.70%)
Fear & Greed Index 29 (Fear)
Sentiment Bearish
Volatility 8.39%
Green Days 14/30 (47%)
50-Day SMA $0.5122
200-Day SMA $0.8112
14-Day RSI 48.44

Synthetix price analysis

TL;DR Breakdown:

  • Synthetix coin price analysis confirmed a downtrend as the price decreased toward $0.452.
  • The altcoin lost 2.31% in the last 24 hours.
  • SNX coin has support around $0.427.

As of January 3, 2026, Synthetix price analysis reveals a bearish trend as resistance remains strong around immediate Fib levels. The altcoin’s price decreased to $0.452 over the past 24 hours. Overall, the cryptocurrency loses a significant 2.31% in value as it enters a correction after two days of bullish price action. Resistance appeared when the coin touched $0.463 yesterday, and the asset continues to lose value today.

SNX/USD 1-day chart analysis

The one-day price chart of the Synthetix coin confirmed a downward market trend following a series of recoveries, as buyers were also in charge previously. However, the cryptocurrency price has decreased to $0.452 over the day. A red candlestick on the price chart highlights the presence of selling pressure.

The distance between the Bollinger Bands defines the intensity of volatility. This distance is decreasing, leading to low volatility at the moment. Currently, the upper limit of the Bollinger Bands indicator, indicating resistance, sits at $0.462. Meanwhile, its lower limit, serving as support, has moved to $0.392.

SNX/USD 1-day price chart.SNX/USD 1-day price chart. Source: TradingView

The Relative Strength Index (RSI) indicator curve is trending in the neutral area, currently at 47. This situation suggests that sellers are currently controlling the momentum, and a downward rally might occur if they continue to lead as the coin sheds.

SNX/USD 4-hour chart analysis

The four-hour price analysis of Synthetix Coin signals strong buying demand for the coin at the current price level. The SNX/USD price slightly increased to $0.453 after going through a small recovery four hours ago. However, the high volatility levels suggest an increased probability of an upcoming reversal or further price oscillation.

The upper Bollinger band has shifted to $0.476, marking the resistance level. The lower Bollinger band has moved to $0.394, showing the support level.

SNX/USD 4-hour price chart.SNX/USD 4-hour price chart. Source: TradingView

The RSI indicator is in the neutral region. Its value increased to 60 over the past four hours. The upward-turning curve on the RSI graph reflects a shift in market sentiment. The bears have been dominating the price chart for the past few hours, but now the bulls are trying to take the lead. This trend has also resulted in a relatively balanced trading setup for intraday traders for the time being.

SNX technical indicators: Levels and action

Daily simple moving averages

PeriodValue ($)Action
SMA 3 0.5345SELL
SMA 5 0.4919SELL
SMA 10 0.4636SELL
SMA 21 0.4394BUY
SMA 50 0.5122SELL
SMA 100 0.8443SELL
SMA 200 0.8112SELL

Daily exponential moving averages

PeriodValue ($)Action
EMA 3 0.4730SELL
EMA 5 0.5477SELL
EMA 10 0.6677SELL
EMA 21 0.7261SELL
EMA 50 0.7132SELL
EMA 100 0.7128SELL
EMA 200 0.8440SELL

What can we expect from the SNX price analysis next?

Synthetix Coin price analysis shows a downward trend regarding current market events. The coin’s price has decreased to $0.452 in the last 24 hours. If the bearish momentum continues, the SNX price might retest support at the $0.427 level. Conversely, if buying interest overwhelms, the altcoin may again jump to the $0.463 level.

Is SNX a good investment?

The Synthetix rebranding in 2018 rejuvenated the ecosystem, which has grown continually with multiple listed synths. Despite concerns over the stability of its stablecoins, SNX, the native token, is set to mark new records, as seen in Cryptopolitan’s SNX price predictions from 2026 to 2032. It is expected that SNX will reach $2.58 by 2030.

Why is SNX down?

The cryptocurrency market is in a bearish mode, and SNX is following suit. From a larger perspective, the token is getting negative sentiment as the SNX price decreased to $0.452, losing 2.31% of its total value in the last few hours.

What is the target price for SNX?

The target price for SNX is $0.800376 for the current year, which is still quite higher than the current Synthetix price.

Will SNX reach $5?

The current price action does not justify predicting a $5 target. However, in the cryptocurrency market, things change rapidly, and if the token maintains its price levels, a recovery can be initiated. It can be expected that SNX will reach a maximum of $3.47 by 2032. However, this is not investment advice, and anyone willing to purchase SNX tokens should seek independent professional consultation.

Will SNX reach $1?

Considering the future price movements, SNX will reach the $1 level by 2027. The last time SNX was seen at the $6 level was November 2025.

Will SNX reach $10?

According to crypto analysts’ price predictions, SNX may not reach this level in the next five years. Considering the current market cap of the token, it seems like a distant target.

Will SNX reach $100?

No, market analysts don’t expect SNX to reach $100 during the next 10 years, considering the long term Synthetix price forecast.

How high can SNX go?

The highest expected price for SNX is $3.47, which it will achieve in 2032.

Does SNX have a future?

SNX is trading significantly lower than its mid-December price levels, making it an ideal time for buyers to enter the market. Given its current low price and a favorable future valuation of $3.47 by the end of 2032, the asset appears to be a worthwhile investment. However, one’s own research is advised.

Recent news/ updates on SNX

  • Synthetix announced that its canonical perp DEX on Ethereum Mainnet is now live.

SNX price prediction January 2026

This month, SNX is expected to reach a high of $0.577, with an average price of $0.440 and a minimum trading price of $0.319.

MonthPotential Low ($)Potential Average ($)Potential High ($)
January$0.319$0.440 $0.577

SNX price prediction 2026

The price of SNX is predicted to reach a minimum value of $0.285 by Q4 of 2026. Traders can anticipate a maximum value of $0.800376 and an average trading price of $0.66698.

YearPotential Low ($)Potential Average ($)Potential High ($)
2026$0.285$0.66698$0.800376

SNX price predictions 2027 – 2032

YearPotential Low ($)Potential Average ($)Potential High ($)
20270.9782371.111.25
20281.421.561.69
20291.872.002.13
20302.312.452.58
20312.762.893.02
20323.203.333.47

Synthetix price prediction 2027

The year 2027 will experience more bullish momentum. According to the SNX price prediction, it will range between $0.978237 and $1.25, with an average trading price of $1.11.

Synthetix price prediction 2028

The Synthetix Network token prediction climbs even higher into 2028. According to the projections, the price of SNX will range between $1.42 and $1.69, with an average of $1.56.

Synthetix price prediction 2029

According to our Synthetix Network token price prediction for 2029, we expect a maximum price of Synthetix to be $2.13, a minimum price of $1.87, and an average price of $2.00.

Synthetix price prediction 2030

According to the Synthetix price prediction for 2030, the price of SNX will range from $2.31 to $2.58, with an average price of $2.45.

Synthetix price prediction 2031

The Synthetix Network token price prediction for 2031 indicates the price will range between $2.76 and $3.02. The average Synthetix price forecast is $2.89.

SNX price prediction 2032

The Synthetix forecast for 2032 is a high of $3.47. According to the SNX coin price prediction, it will reach a minimum price of $3.20 and average at $3.33. 

Synthetix (SNX) price prediction 2026 – 2032. Source: CryptopolitanSynthetix (SNX) price prediction 2026 – 2032. Source: Cryptopolitan

Synthetix market price prediction: Analysts’ SNX price forecast

Firm20262027
DigitalCoinPrice $0.80$1.11
CoinCodex$0.2315$0.2114

Cryptopolitan’s Synthetix (SNX) price prediction

Our analysis shows that SNX has been highly volatile since its historical listing price. It remains unpredictable at current levels, with predictions indicating it will break out higher. SNX will achieve a high of $0.800376 by the end of 2026. SNX is expected to trade between $0.978237 and $1.25 in 2027. In 2032, SNX will be priced between $3.20 and $3.47 with an average price of $3.33.

Synthetix historic price sentiment

SNX price history.SNX price history. Source: Coinmarketcap
  • Kain Warwick launched Synthetix in September 2017 under Havven (HAV). 
  • The HAV Airdrop Campaign ran between 4 and 14 February 2018 and offered two million tokens for around $1 million.
  • On November 30, 2018, Synthetic announced its rebranding from Havven. This included renaming its native token, HAV (Havven token), to SNX. The contract address did not change.
  • It registered its lowest price at $0.03258 on January 5, 2019.
  • Unlike most mega-altcoins, SNX did not rally after launch; it consistently traded below $0.5 until the last quarter of 2019.
  • In 2020, it made a mega rally to $7.3, as per historical SNX market data. In the 2021 bull cycle, it shot higher, and on February 14, it registered its all-time high at $28.77.
  • It reversed to $5 in July before pumping again to $15 in September.
  • In the 2022 crypto winter, SNX shed most of its value as it retreated to the $2 mark by the end of the year.
  • In 2023, it consistently traded between $1.5 and $3 until the last quarter, when it had its break. 
  • In March 2024, SNX reached a high of $5; in July, SNX came down from the $2.01 to $1.65 range.
  • In August 2024, the SNX token’s price dipped as low as $1.20, and September saw a maximum price of $1.71.
  • In October 2024, SNX dipped and became rangebound. It closed the month with a $1.31 price tag, while December saw a stream of improved prices with a peak price of $3.38.
  • During the remainder of December, SNX kept shedding its value, and it entered 2025 with a wave of correction to $1.90.
  • The highest price of the SNX token was 2.27 in January, but it corrected to $1.20 in February.
  • In March, SNX price declined to $0.89, and in April it further descended to the $0.77 range.
  • In May 2025, it saw some recovery to $0.926, improving its market capitalization, and in July, the token peaked at $0.781, showing significant growth.
  • From August to September, SNX’s average price remained around $0.65 to $0.67, and in October 2025, SNX was trading above $1, finally peaking at $2.58 on the 13th of the month.
  • At the start of November, the SNX token was trending below $1.00. By the end of November, the price of SNX declined toward $0.55. 
  • SNX started 2026 with a price tag of $0.45 under bearish pressure.
Market Opportunity
SNX Logo
SNX Price(SNX)
$0.3747
$0.3747$0.3747
-2.95%
USD
SNX (SNX) Live Price Chart
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Summarize Any Stock’s Earnings Call in Seconds Using FMP API

Summarize Any Stock’s Earnings Call in Seconds Using FMP API

Turn lengthy earnings call transcripts into one-page insights using the Financial Modeling Prep APIPhoto by Bich Tran Earnings calls are packed with insights. They tell you how a company performed, what management expects in the future, and what analysts are worried about. The challenge is that these transcripts often stretch across dozens of pages, making it tough to separate the key takeaways from the noise. With the right tools, you don’t need to spend hours reading every line. By combining the Financial Modeling Prep (FMP) API with Groq’s lightning-fast LLMs, you can transform any earnings call into a concise summary in seconds. The FMP API provides reliable access to complete transcripts, while Groq handles the heavy lifting of distilling them into clear, actionable highlights. In this article, we’ll build a Python workflow that brings these two together. You’ll see how to fetch transcripts for any stock, prepare the text, and instantly generate a one-page summary. Whether you’re tracking Apple, NVIDIA, or your favorite growth stock, the process works the same — fast, accurate, and ready whenever you are. Fetching Earnings Transcripts with FMP API The first step is to pull the raw transcript data. FMP makes this simple with dedicated endpoints for earnings calls. If you want the latest transcripts across the market, you can use the stable endpoint /stable/earning-call-transcript-latest. For a specific stock, the v3 endpoint lets you request transcripts by symbol, quarter, and year using the pattern: https://financialmodelingprep.com/api/v3/earning_call_transcript/{symbol}?quarter={q}&year={y}&apikey=YOUR_API_KEY here’s how you can fetch NVIDIA’s transcript for a given quarter: import requestsAPI_KEY = "your_api_key"symbol = "NVDA"quarter = 2year = 2024url = f"https://financialmodelingprep.com/api/v3/earning_call_transcript/{symbol}?quarter={quarter}&year={year}&apikey={API_KEY}"response = requests.get(url)data = response.json()# Inspect the keysprint(data.keys())# Access transcript contentif "content" in data[0]: transcript_text = data[0]["content"] print(transcript_text[:500]) # preview first 500 characters The response typically includes details like the company symbol, quarter, year, and the full transcript text. If you aren’t sure which quarter to query, the “latest transcripts” endpoint is the quickest way to always stay up to date. Cleaning and Preparing Transcript Data Raw transcripts from the API often include long paragraphs, speaker tags, and formatting artifacts. Before sending them to an LLM, it helps to organize the text into a cleaner structure. Most transcripts follow a pattern: prepared remarks from executives first, followed by a Q&A session with analysts. Separating these sections gives better control when prompting the model. In Python, you can parse the transcript and strip out unnecessary characters. A simple way is to split by markers such as “Operator” or “Question-and-Answer.” Once separated, you can create two blocks — Prepared Remarks and Q&A — that will later be summarized independently. This ensures the model handles each section within context and avoids missing important details. Here’s a small example of how you might start preparing the data: import re# Example: using the transcript_text we fetched earliertext = transcript_text# Remove extra spaces and line breaksclean_text = re.sub(r'\s+', ' ', text).strip()# Split sections (this is a heuristic; real-world transcripts vary slightly)if "Question-and-Answer" in clean_text: prepared, qna = clean_text.split("Question-and-Answer", 1)else: prepared, qna = clean_text, ""print("Prepared Remarks Preview:\n", prepared[:500])print("\nQ&A Preview:\n", qna[:500]) With the transcript cleaned and divided, you’re ready to feed it into Groq’s LLM. Chunking may be necessary if the text is very long. A good approach is to break it into segments of a few thousand tokens, summarize each part, and then merge the summaries in a final pass. Summarizing with Groq LLM Now that the transcript is clean and split into Prepared Remarks and Q&A, we’ll use Groq to generate a crisp one-pager. The idea is simple: summarize each section separately (for focus and accuracy), then synthesize a final brief. Prompt design (concise and factual) Use a short, repeatable template that pushes for neutral, investor-ready language: You are an equity research analyst. Summarize the following earnings call sectionfor {symbol} ({quarter} {year}). Be factual and concise.Return:1) TL;DR (3–5 bullets)2) Results vs. guidance (what improved/worsened)3) Forward outlook (specific statements)4) Risks / watch-outs5) Q&A takeaways (if present)Text:<<<{section_text}>>> Python: calling Groq and getting a clean summary Groq provides an OpenAI-compatible API. Set your GROQ_API_KEY and pick a fast, high-quality model (e.g., a Llama-3.1 70B variant). We’ll write a helper to summarize any text block, then run it for both sections and merge. import osimport textwrapimport requestsGROQ_API_KEY = os.environ.get("GROQ_API_KEY") or "your_groq_api_key"GROQ_BASE_URL = "https://api.groq.com/openai/v1" # OpenAI-compatibleMODEL = "llama-3.1-70b" # choose your preferred Groq modeldef call_groq(prompt, temperature=0.2, max_tokens=1200): url = f"{GROQ_BASE_URL}/chat/completions" headers = { "Authorization": f"Bearer {GROQ_API_KEY}", "Content-Type": "application/json", } payload = { "model": MODEL, "messages": [ {"role": "system", "content": "You are a precise, neutral equity research analyst."}, {"role": "user", "content": prompt}, ], "temperature": temperature, "max_tokens": max_tokens, } r = requests.post(url, headers=headers, json=payload, timeout=60) r.raise_for_status() return r.json()["choices"][0]["message"]["content"].strip()def build_prompt(section_text, symbol, quarter, year): template = """ You are an equity research analyst. Summarize the following earnings call section for {symbol} ({quarter} {year}). Be factual and concise. Return: 1) TL;DR (3–5 bullets) 2) Results vs. guidance (what improved/worsened) 3) Forward outlook (specific statements) 4) Risks / watch-outs 5) Q&A takeaways (if present) Text: <<< {section_text} >>> """ return textwrap.dedent(template).format( symbol=symbol, quarter=quarter, year=year, section_text=section_text )def summarize_section(section_text, symbol="NVDA", quarter="Q2", year="2024"): if not section_text or section_text.strip() == "": return "(No content found for this section.)" prompt = build_prompt(section_text, symbol, quarter, year) return call_groq(prompt)# Example usage with the cleaned splits from Section 3prepared_summary = summarize_section(prepared, symbol="NVDA", quarter="Q2", year="2024")qna_summary = summarize_section(qna, symbol="NVDA", quarter="Q2", year="2024")final_one_pager = f"""# {symbol} Earnings One-Pager — {quarter} {year}## Prepared Remarks — Key Points{prepared_summary}## Q&A Highlights{qna_summary}""".strip()print(final_one_pager[:1200]) # preview Tips that keep quality high: Keep temperature low (≈0.2) for factual tone. If a section is extremely long, chunk at ~5–8k tokens, summarize each chunk with the same prompt, then ask the model to merge chunk summaries into one section summary before producing the final one-pager. If you also fetched headline numbers (EPS/revenue, guidance) earlier, prepend them to the prompt as brief context to help the model anchor on the right outcomes. Building the End-to-End Pipeline At this point, we have all the building blocks: the FMP API to fetch transcripts, a cleaning step to structure the data, and Groq LLM to generate concise summaries. The final step is to connect everything into a single workflow that can take any ticker and return a one-page earnings call summary. The flow looks like this: Input a stock ticker (for example, NVDA). Use FMP to fetch the latest transcript. Clean and split the text into Prepared Remarks and Q&A. Send each section to Groq for summarization. Merge the outputs into a neatly formatted earnings one-pager. Here’s how it comes together in Python: def summarize_earnings_call(symbol, quarter, year, api_key, groq_key): # Step 1: Fetch transcript from FMP url = f"https://financialmodelingprep.com/api/v3/earning_call_transcript/{symbol}?quarter={quarter}&year={year}&apikey={api_key}" resp = requests.get(url) resp.raise_for_status() data = resp.json() if not data or "content" not in data[0]: return f"No transcript found for {symbol} {quarter} {year}" text = data[0]["content"] # Step 2: Clean and split clean_text = re.sub(r'\s+', ' ', text).strip() if "Question-and-Answer" in clean_text: prepared, qna = clean_text.split("Question-and-Answer", 1) else: prepared, qna = clean_text, "" # Step 3: Summarize with Groq prepared_summary = summarize_section(prepared, symbol, quarter, year) qna_summary = summarize_section(qna, symbol, quarter, year) # Step 4: Merge into final one-pager return f"""# {symbol} Earnings One-Pager — {quarter} {year}## Prepared Remarks{prepared_summary}## Q&A Highlights{qna_summary}""".strip()# Example runprint(summarize_earnings_call("NVDA", 2, 2024, API_KEY, GROQ_API_KEY)) With this setup, generating a summary becomes as simple as calling one function with a ticker and date. 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